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Влияние электронных сигарет на здоровье

Воздействие электронных сигарет на здоровье включает ряд потенциальных рисков, таких как воздействие токсичных химических веществ, возможность повышения вероятности респираторных и сердечно-сосудистых заболеваний, а также опасения по поводу их возможной роли в развитии рака. После их появления на рынке появились заявления о том, что они являются более безопасной альтернативой традиционным табачным изделиям.

Электронные сигареты относятся к категории электронных систем доставки никотина (ЭСДН) . Их использование может помочь нынешним курильщикам табака снизить зависимость от сигарет из горючего табака. Однако из-за того, что изначально их маркетинг практически не регулировался, неясно, насколько безопасны эти продукты на самом деле. [1]

Тем не менее, употребление электронных сигарет среди подростков и взрослых растет. Эксперты полагают, что эта тенденция продолжит усиливаться в ближайшие годы из-за ошибочного представления о безопасности электронных сигарет. [1] В Соединенном Королевстве некоторые считают, что вейпинг примерно на 95% менее вреден, чем табак, после противоречивого исторического обзора, проведенного Общественным здравоохранением Англии . [2] Несмотря на это, употребление электронных сигарет несет в себе множество рисков для здоровья . [1] [3] Эти риски зависят от жидкости в этих устройствах и варьируются в зависимости от конструкции и поведения пользователя. [4] Образующийся аэрозоль, который вдыхают пользователи, воздействует на дыхательную, сердечно-сосудистую, иммунологическую и центральную нервную системы. [5] E-cigarettes also reduce lung function, reduce cardiac muscle function, and increase inflammation.[6][7]

Even though traditional cigarettes have a higher damage record than e-cigarettes, e-cigarettes can have risks such as the highly publicized and deadly 2019–20 vaping lung illness outbreak in North America that lead to 68 deaths and was strongly linked to vitamin E acetate in THC-containing vaping liquid.[8] There are also risks from misuse or accidents.[9] Such accidents can be through nicotine poisoning (especially among small children[10]),[11] contact with liquid nicotine,[12] and fires caused by vaporizer malfunction.[13]

E-Cigarettes as an Alternative to Smoking

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Переход от табака к вейпингу может снизить прибавку в весе после прекращения курения, повысить толерантность к физической нагрузке, снизить воздействие токсичных химических веществ и снизить риск смерти. Вейпинг может уменьшить одышку, уменьшить кашель, уменьшить срыгивание и уменьшить боль в горле по сравнению с табаком.
Effects of vaping, compared to tobacco smoking[14]

Electronic cigarettes have been proposed as a healthier alternative for people who otherwise cannot or choose not to quit smoking, even if complete abstinence is the healthiest option. In June 2014, the Royal College of Physicians stated that, "On the basis of available evidence, the RCP believes that e-cigarettes could lead to significant falls in the prevalence of smoking in the UK, prevent many deaths and episodes of serious illness, and help to reduce the social inequalities in health that tobacco smoking currently exacerbates."[15] Indeed, a recent 2022 systemic review showed that electronic cigarettes (ECs) with nicotine has high evidence that it helps people quit smoking for at least six months compared to using nicotine-replacement therapy (NRT) or electric cigarettes without nicotine.[16] However, the World Health Organization (WHO) says that electronic cigarettes cannot be consider as an efficient way of quiting smoking because of the lack of evidence. Additionally, using electronic cigarettes for smkoing cessation is controversial because of lack of evidence and lack of long-term safety studies.[17]

The public health community is divided over how the use of these devices will impact the tobacco epidemic.[18] Some tobacco control advocates predict that e-cigarettes will increase rates of cigarette uptake, especially among youth.[18] Others envision that these devices have potential for aiding cessation efforts, or reducing harm among people who continue to smoke.[18] Scientific studies advocate caution before designating e-cigarettes as beneficial, but current users continue to believe they are beneficial.[19] It is estimated their safety risk is similar to that of smokeless tobacco, which has about 1% of the mortality risk of traditional cigarettes.[20] Additionally, the risk of early death is anticipated to be similar to that of smokeless tobacco.[21]

Opinions that e-cigarettes are a safe substitute to traditional cigarettes may compromise tobacco control efforts.[22]The American Cancer Society stated, "The makers of e-cigarettes say that the ingredients are 'safe,' but this only means the ingredients have been found to be safe to eat. Inhaling a substance is not the same as swallowing it. There are questions about how safe it is to inhale some substances in the e-cigarette vapor into the lungs."[23]The Canadian Cancer Society has stated that, "A few studies have shown that there may be low levels of harmful substances in some e-cigarettes, even if they don't have nicotine."[24]In the UK a National Institute for Health and Care Excellence (NICE) guideline did not recommend e-cigarettes as there are questions regarding the safety, efficacy, and quality of these products.[25]

The health effects that tobacco smoking has on human health is very well known. Although electronic cigarettes have been studied to be less harmful then tabacco smoking, they still carry risks.[17] Some countries have completely banned electronic cigarettes such as Brazil, Uruguay and India.[17] In the US, electronic flavored electronic cigarretes have been banned in 2020 after increased in adolecent use and deaths. Despite this, counterfiet e-cigarettes can still be purchased by users online.[17]

E-cigarrette vapor does not contain tobacco and does not involve combustion, therefore users may avoid several harmful constituents usually found in tobacco smoke,[9] such as ash, tar, and carbon monoxide.[26] A 2014 review found that e-cigarette aerosol contains far fewer carcinogens than tobacco smoke, and concluded that e-cigarettes "impart a lower potential disease burden" than traditional cigarettes.[27]

Серьезные побочные эффекты вейпинга включают корнеосклеральные рваные раны, ожоги глаз или смерть в результате взрыва электронной сигареты. Менее серьезные побочные эффекты вейпинга включают раздражение глаз, нечеткость зрения, головокружение, головную боль, раздражение горла, кашель, повышенное сопротивление дыхательных путей, боль в груди, повышение артериального давления, учащенное сердцебиение, тошноту, рвоту и боли в животе.
JUUL e-cigarette with a battery and differently flavored pods

Effects of Increasing E-Cigarette Use

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A concern regarding vaping is that it could entice children to initiate smoking. This could be the argument that nicotine leads to smoking or making smoking appear more acceptable again.[28] Concerns exist in respect to adolescence vaping due to studies indicating nicotine may potentially have harmful effects on the growing brain.[29]

The medical community is concerned that increased availability of e-cigarettes could increase worldwide nicotine dependence, especially among the young as they are enticed by the various flavor options e-cigarettes have to offer.[30] Vaping does not produce smoke from burning tobacco, therefore opponents of e-cigarettes fear that traditional smokers will substitute vaping for smoking in settings where smoking is not permitted without any real intention of quitting traditional cigarettes.[30] Furthermore, vaping in public places, coupled with recent e-cigarette commercials on national television, could possibly undermine or weaken current antismoking regulations.[30] Fear exists that wide-scale promotion and use of e-cigarettes, fueled by an increase in advertising of these products, may carry substantial public health risks.[31]

The entrance of large US tobacco manufacturers (Altria Group, Reynolds American, and Lorillard), into the e-cigarette sector raises many potential public health issues.[32] Instead of encouraging quitting, the tobacco industry markets e-cigarettes as a way to get around clean indoor air laws, which promotes dual use.[32] With that, the emergence of e-cigarettes may benefit Big Tobacco to sustain an industry for tobacco.[33] A 2017 review states that the "Increased concentration of the ENDS market in the hands of the transnational tobacco companies is concerning to the public health community, given the industry's legacy of obfuscating many fundamental truths about their products and misleading the public with false claims, including that low-tar and so-called "light" cigarettes would reduce the harms associated with smoking.

Although industry representatives are claiming interest in ENDS because of their harm-reduction potential, many observers believe that profit remains the dominant motivation."[34] E-cigarettes are expanding the tobacco epidemic by bringing lower-risk youth into the market, many of whom then transition to smoking cigarettes.[35]

Effects on smoking cessation

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Public health authorities are concerned that electronic cigarettes may increase overall nicotine exposure for young people and increase use of burned tobacco products among young[36] and older people by acting as a gateway drug for non-smokers and sustaining or restarting nicotine addiction among smokers and former smokers, respectively.[37]A study conducted found that people using electronic cigarettes go through more nicotine than traditional tobacco users.[38]

There is also concern that e-cigarettes may result in smokers rejecting historically effective quitting smoking methods.[27] Majority of smokers attempting to quit by vaping may stop smoking but maintain nicotine intake because their long-term effects are not clear.[39] Since e-cigarettes are intended to be used repeatedly, they can conveniently be used for an extended period of time, which may contribute to increased consumption.[40] A systemic review and meta-analysis paper reviewed numerous studies that included randomized control trials (RCTs) and showed that using electronic cigarettes reduces smoking cessation. In other words, people that use e-cigarettes to quit smoking have a lower chance of quiting than those people that do not use e-cigarettes.[41]

There are health benefits that are associated with switching from tobacco products to e-cigarettes, including decreased weight gain after smoking cessation and improved exercise tolerance.[42] Many e-cigarette users cite a desire to quit smoking as a primary reason for use, but there is no clear evidence that e-cigarettes help people quit smoking entirely. However, they may help smokers reduce the number of cigarettes they smoke.[43] There is some evidence that the usage of electronic cigarettes with nicotine increases quit rates compared to electronic cigarettes without nicotine and compared to nicotine replacement therapy.[44] The size of the effect (i.e. how effective the electronic cigarettes are compared to the other options) is not known.[44]

There are some discussions that the age to be permitted to purchase e-cigarettes should be increased. A 2017 review found "Because the brain does not reach full maturity until the mid-20s, restricting sales of electronic cigarettes and all tobacco products to individuals aged at least 21 years and older could have positive health benefits for adolescents and young adults."[45] Indeed, a federal law in 2019 raised the minimum age to buy electronic cigarettes from 18 to 21 years in the U.S.[46] E-cigarettes are a source of potential developmental toxicants.[47] Children subjected to e-cigarettes had a higher likelihood of having more than one adverse effect and those were more significant than with children subjected to traditional cigarettes.[48] Significant harmful effects were cyanosis, nausea, and coma, among others.[48]

It does not matter whether you are using e-cigarettes that contain THC, nicotine, or flavorings, the liquid that produces the vapor can contain other harmful chemicals that are inhaled into your body.[49] Current e-cigarette users also struggle to end their e-cigarette use. A study was conducted which concluded that a primary reason most vape users quit is due to health (75%), cost (45%), and to reduce risk of COVID-19 (24%). Methods most users used to quit vaping were by cutting (68%), getting advice from doctors (28%), quitting 'cold turkey' (24%), nicotine, or switching to E-cigarette with less nicotine (24%).[50]

Overall risk relative to smoking

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The degree of relative safety of the same amount of use of electronic versus conventional cigarettes is disputed. 2015[51] and 2018 Public Health England (PHE) reports claimed that vaping is "at least 95% less harmful than smoking", while pointing out that this does not mean vaping is safe.[52] This claim has been widely repeated, including by the Royal College of Physicians, the Royal Society for Public Health, and the National Health Service.[35] The original paper making the claim pointed out that the accuracy of the estimate was limited by "lack of hard evidence for the harms of most products on most of the criteria".[35] The group that produced the estimate in a 2014 meeting was funded by EuroSwiss Health and has been criticized as using a weak methodology,[53] not citing specific evidence,[35] and for having financial ties to the tobacco industry.[53][35]

The estimate has been extensively disputed in medical journals.[54] Many have criticized the validity of the estimate that vaping is 95% less harmful than smoking.[34] Some researchers claim in more recent papers that the harm from electronic cigarettes is known to be much higher than the "95% safer" figure.[55][35]

A government review by Public Health England[56] found that e-cigarettes sold in England (which are regulated to a nicotine strength[57] of no more than 20 mg/ml[58]) are unlikely to exceed 5% of the harm of cigarettes for non-pregnant adults. This claim is consistent with the view of the National Academies of Sciences, Engineering, and Medicine[59] of the United States, which argues that e-cigarettes are not without risk, but compared to combustible tobacco cigarettes, they contain fewer toxicants. Furthermore, e-cigarette is not only a harm reduction alternative to smoking; but it is also a smoking cessation product, to the same extent of other Food and Drug Administration-approved nicotine replacement therapies.[60]

Regulation

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Electronic cigarette use is very popular to the younger populations, especially with all the many flavors these e-cigarettes come in. Regulations are needed to not only keep the public safe but to decrease the number of increasing electronic cigarette smoking amoung the young. Some countries have completely banned the sell of electronic cigarettes.[17] A systemic study showed that increasing taxation, banning some flavors, sale licenses and label warnings on electronic cigarettes have decreased the incidences of youth vaping.[61] Although no single regulation has been found to be the most effective, having multiple regulations does make an impact in decreasing vaping among the youth.[61]

A 2014 review recommended that e-cigarettes could be adequately regulated for consumer safety with existing regulations on the design of electronic products.[62] Regulation of the production and promotion of e-cigarettes may help lower some of the adverse effects associated with tobacco use.[63]

E-cigarette devices are not required to disclose the level of nicotine provided, nor the other chemicals they contain, being difficult for consumers to assess the safety of the product.[64]

In the United States of America, the Food and Drug Administration (FDA) regulates products made or derived from Tobacco under the "claims of therapeutic benefit" pole as established in the Federal Food, Drug, and Cosmetic Act.[65] An electronic device that delivers nicotine or other vaporized liquids to the person using the device includes electronic cigarettes, cigars, pipes, hookah, etc. [5] The FDA reviews claims from electronic cigarettes manufacturers of therapeutic benefits related to quitting smoking. This is due to the chances of confusion by consumers created from these claims. Under the Tobacco Control Amendment, products with branding of claims relating to quitting smoking, or quitting tobacco use and other related statements to be under the jurisdiction of the FDA.[66]

The Jurisdiction Rule further clarifies whether a product with tobacco is regulated as tobacco products or as drugs, devices, or combination products (which are then regulated under the FD&C Act). To be under consideration of the FD&C Act, the product must be intended for use in the diagnosis of disease or other conditions or intends to impact the body differently from nicotine effects claimed in the margetting of cigarettes and smokeless tobacco products prior to March 21, 2000. For example, electronic cigarettes that include claims of aiding in quitting smoking or aiding in the relief of nicotine withdrawal symptoms would be regulated under the FD&C Act.[67]

A modified risk tobacco product is any tobacco product that is being distributed with the intention to reduce the negative impacts of tobacco-related diseases related to tobacco products in the market. This would be defined in the products’ labeling and descriptors. Modified risk tobacco products may not be introduced into commerce unless there is an order that establishes the ability of the product to promote the public health. These are regulated because of the potential for interpretation of the MRTP to be less harmful than other tobacco products.[68] Medical products on the other hand are intended to limit the effect of or prevent a disease; it must be examined to be safe and effective in the treatment of the condition(s) and positively impact the health condition.[67]

All states in the U.S. have adopted the Federal Tobacco 21 legislation as an amendment to the FD&C Act to raise the federal minimum age for sale of tobacco products from 18 to 21 years old from December 20, 2019. This law applies to sales of tobacco products, including electronic cigarettes.[69] Some states have banned the sales of flavored e-cigarettes in an attempt to address the concern of adolescents' usage of them. For example, the Assembly Bill 935 and Senate Bill 793 banned the sale of many flavored tobacco products such as flavored electronic cigarettes in retail locations.[70]

Adverse effects

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Battery explosions are caused by an increase in internal battery temperature and some have resulted in severe skin burns.[71] There is a small risk of battery explosion in devices modified to increase battery power.[72] Nicotine poisoning related to e-cigarettes can occur by ingestion, inhalation, or absorption via the skin or eyes.[11] Accidental poisoning can result from using undiluted concentrated nicotine when mistakenly used as prepared e-liquid.[73] There is possibility that inhalation, ingestion, or skin contact can expose people to high levels of nicotine.[63] Concerns with exposure to the e-liquids include leaks or spills and contact with contaminants in the e-liquid.[74] Pregnant women, breastfeeding mothers, and the elderly are more sensitive to nicotine than other individuals.[75] There are safety issues with the nicotine exposure from e-cigarette use, which may cause addiction and other adverse effects.[4]There is considerable variation among e-cigarettes and in their liquid ingredients[76] and thus the contents of the aerosol delivered to the user.[13] The cytotoxicity of e-liquids varies,[77] and contamination with various chemicals have been detected in the liquid.[78] E-cigarette vapor potentially contains harmful chemicals which are not found in tobacco smoke.[79]

Studies over a year on the effects of exposure to e-cigarettes have not been conducted, as of 2019.[80] The risk from serious adverse events, including death, was reported in 2016 to be low.[81] The long-term health consequences from vaping is likely greater than nicotine replacement products.[82] They may produce fewer adverse effects compared to tobacco products.[83] They may cause long-term and short-term adverse effects, including airway resistance, irritation of the airways, eyes redness, and dry throat.[84] Short-term adverse effects reported most often were mouth and throat irritation, dry cough, and nausea.[85]

Adverse effects are mostly associated with short-term use and the reported adverse effects decreased over time.[85] Dryness of the mouth and throat is believed to stem from the ability of both propylene glycol and glycerin to absorb water.[86] Some e-cigarettes users experience adverse effects like throat irritation which could be the result of exposure to nicotine, nicotine solvents, or toxicants in the aerosol.[11] Vaping may harm neurons and trigger tremors and spasms.[87]The use of e-cigarettes has been found associated with nose bleeding, change in bronchial gene expression, release of cytokines and proinflammatory mediators, and increase in allergic airway inflammation which can exacerbate asthmatic symptoms, thus elevating infiltration of inflammatory cells including eosinophils into airways.[31]A 2016 study found vaping using an e-liquid containing 23% alcohol was linked to reduced performance on the Purdue Pegboard Test.[88]

Reports to the FDA in 2013 for minor adverse effects identified with using e-cigarettes included headache, chest pain, nausea, and cough.[71] Major adverse events reported to the FDA in 2013 included hospitalizations for pneumonia, congestive heart failure, seizure, rapid heart rate, and burns.[71] However, no direct relationship has been proven between these events and e-cigarette use, and some may be due to existing health problems.[71]Many of the observed negative effects from e-cigarette use concerning the nervous system and the sensory system are possibly related to nicotine overdose or withdrawal.[89]

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Most e-cigarettes use lithium batteries, the improper use of which may result in accidents.[9] Most fires caused by vaporing devices are a result of the lithium batteries becoming too hot and igniting.[90] Defective e-cigarette batteries have been known to cause fires and explosions.[91] The chance of an e-cigarette blast resulting in burns and projectile harms greatly rises when using low-quality batteries, if stored incorrectly or was altered by the user.[92] Inexpensive manufacturing with poor quality control could account for some of the explosions.[93] It has been recommended that manufacturing quality standards be imposed in order to prevent such accidents.[9] In the event the lithium ion substances leak from the battery as a result of an e-cigarette blast, first aid is recommended to prevent additional chemical reaction.[94] An e-cigarette blast can induce serious burns and harms that need thorough and lengthy medical treatment particularly when a device goes off in hands, mouths, or pockets.[95] A 2017 review found "The electrolyte liquid within the lithium ion battery cells is at risk for overheating, thus building pressure that may exceed the capacity of the battery casing. This "thermal runaway" can ultimately result in cell rupture or combustion."[96] It is recommended to use insulated protective cases for batteries not in use to lessen the potential risk related to thermal runaway.[97] Swallowing e-cigarette batteries can be toxic.[98]

Графика из отчета Управления пожарной охраны США (USFA) за октябрь 2014 года под названием «Пожары и взрывы электронных сигарет». В USFA заявили, что в период с 2009 по август 2014 года 25 пожаров и взрывов в США стали результатом употребления электронных сигарет.
Graphic from an October 2014 United States Fire Administration (USFA) report entitled Electronic Cigarette Fires and Explosions.[99] The USFA said that 25 fires and explosions in the US were the result of e-cigarette use between 2009 and August 2014.[99]

The numbers of medical reports from harms resulting from vaping have continued to increase since 2016.[93] Fires caused by e-cigarettes appear to be increasingly frequent.[90] E-cigarette explosions have resulted in burns, lost teeth, neck fractures, and battery acid contact to the face, mouth, and eyes.[81] The extent of the burns varied from 1% to 8% total body surface area, were reported and most commonly occurred in the lower extremity, hands, head and neck, and genitalia.[96] E-cigarette explosion harms correlated with malfunctioning of the device can result in minor total body surface area 2nd and 3rd degree burns.[100] Around 50% needed surgical management for the burn.[96] The most common harms are burns as a result of explosion in the pocket and harms to the face.[90] A 2017 review found "Several of the reported cases show that 'the battery in pocket' precedes the incident. The damp environment in the pocket may have sufficient moisture to start a chemical reaction within the lithium-ion battery and the presence of metal objects can produce short-circuit which can over heat the battery leading to an explosion."[94] Flame burns, chemical burns, and blast injuries have occurred as a result of the e-cigarette battery overheating.[101] There is a possible risk to bystanders from e-cigarette explosions.[81] There is also a risk of property damage as a result of flammable materials catching on fire from an e-cigarette explosion.[81] A March 2016 research article assembled reports by US government agencies and in the media of 92 e-cigarette blasts, fire, or overheating events, with related injuries in 47 individuals.[102] Prominent harms included 2 cervical vertebral fractures, 1 palate fracture, 3 instances of damaged teeth, 33 thermal burns, 4 chemical burns, and 5 lacerations.[102]

График из отчета Управления пожарной охраны США (USFA) за июль 2016 года, озаглавленного «Пожары и взрывы электронных сигарет в США в 2009–2016 годах». С 2014 года наблюдается рост числа травм тяжелой и средней степени тяжести в результате взрывов и пожаров электронных сигарет. В USFA отметили, что это, по-видимому, хорошо коррелирует с тенденцией продаж электронных сигарет.
Graphic from a July 2016 United States Fire Administration (USFA) report entitled Electronic Cigarette Fires and Explosions in the United States 2009 – 2016.[99] There has been an increase in the number of severe and moderate injuries resulting from e-cigarette explosions and fires since 2014.[99] The USFA noted that this appears to correlate well with the e-cigarette sales trend.[99]

The United States Fire Administration reported 195 occasions of fires and explosions in the US caused by e-cigarettes between January 2009 and December 2016.[99] These incidents resulted in 133 acute injuries.[99] Of these injuries, 38 (29 percent) were severe.[99] This list is not considered to be complete because it is very possible that there were events that were not disclosed to the fire department or mentioned in the media.[99] A 2017 review found that "The U.S. Fire Administration reports that 80% of e-cigarette explosions occurred while the battery was being charged. The report revealed that many of the e-cigarettes were being charged by power adaptors that were not provided by the manufacturer, subjecting the battery to an inappropriately high current, which led to thermal runaway and subsequent explosion and/or fire. This problem is potentially further exacerbated by third-party vendors who assemble e-cigarettes from noncompatible parts that may not meet the manufacturers' specifications."[102] The shape of these devices is another concern.[102] They are likely to be cylindrical, with the least strongest structural points at both ends.[102] In the event there is a breach in the battery seal, the pressure inside the e-cigarette can quickly build, launching the ends of the device with a great abundance of force.[102]

E-cigarette device explodes in man's pocket while on bus in California.[103]

Even though there are known risks with unregulated lithium batteries causing serious harm, importing e-cigarettes to the UK is still not restricted and they do not conform to the British Standards, which may increase their chance of resulting in fire and blowing up.[94] There has been a rise in the number of burns due to blasts of the e-cigarettes battery in South Wales and South West England.[94] In the UK fire service call-outs had risen, from 43 in 2013 to 62 in 2014.[104] A 2015 PHE report concluded that the risks of fire from e-cigarettes "appear to be comparable to similar electrical goods".[105] A 2018 PHE report found six case studies involving e-cigarettes with burns in the UK.[106] In five cases, they received burn harms resulting from an e-cigarette blast in their pants pocket.[106] Since e-cigarettes are not subjected to product safety testing, they may not have safety designs to avoid overheating, thermal runaway, and battery failure including fire and explosions.[81] There is inadequate product labeling to inform users of the possible serious harms.[81] The risk from serious adverse events was reported in 2016 to be low, but the aftermath may be disastrous in respect to an e-cigarette blast.[81]

Изображение ожога кожи медиальной поверхности правого бедра над коленом 35-летнего мужчины.
A 35-year-old otherwise healthy male sustained a 2% total body surface area burn to his right lateral thigh when an e-cigarette device in the right back pocket of his pants spontaneously combusted, burning a hole through his pants.[107]

Several burn events during vaping while on home oxygen therapy have happened, leading Health Canada in 2014 to release a warning of fire risk to oxygen therapy users from vaping.[108] The heating element in vaping devices reaches a high temperature which can possibly ignite in the presence of oxygen.[108] Vaping while on oxygen therapy is not recommended.[108]

Users may alter many of the devices, such as E-liquid mixing.[109] Mixing liquid in an unclean area runs the risk of contamination.[110] The addition of alcohol or nicotine could expose the user to more toxicants, especially when added in combinations.[109] Some ingredients in e-liquids could be flammable; this risk is more of concern for users who are inexperienced or do not use protective gear.[109] The amount of vapor produced is controlled by the power of the battery, which has led some users to adjust their e-cigarettes to increase battery power to obtain a stronger nicotine "hit", but there is a small risk of battery explosion.[72] Some users add more or larger batteries to nonadjustable e-cigarettes, which may lead to battery leakage or explosion.[109]

Poisoning

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Наиболее распространенные побочные эффекты при обращении с электронными сигаретами в токсикологические центры США: Воздействие при проглатывании приводило к рвоте, тошноте, сонливости, тахикардии или возбуждению. Вдыхание/назальное воздействие приводило к тошноте, рвоте, головокружению, возбуждению или головной боли. Воздействие на глаза приводило к раздражению или боли в глазах, покраснению глаз или конъюнктивиту, помутнению зрения, головной боли или ссадинам роговицы. Множественные пути воздействия приводили к раздражению или боли в глазах, рвоте, покраснению глаз или конъюнктивиту, тошноте или кашлю. Воздействие на кожу приводило к тошноте, головокружению, рвоте, головной боли или тахикардии.
Symptoms of nicotine poisoning related to e-cigarette calls to US poison control centers[111]

Nicotine poisoning related to e-cigarettes includes ingestion, inhalation, or absorption via the skin or eyes.[11] The toxicity of e-cigarettes can be attributed both to the vaping liquid containing harmful aerosols as well as the toxic chemicals that are released in the vapor that is produced upon exposure of the vaping liquid to the heating coil contained within the device. [112] Accidental poisoning can result from using undiluted concentrated nicotine when mistakenly used as prepared e-liquids.[73] E-cigarettes involve accidental nicotine exposure in children through ingestion and inhalation of e-cigarette vapors.[12] Choking on e-cigarette components is a potential risk.[12] In 2014, an infant died from choking on an e-cigarette component.[113] Concerns exist regarding poisoning in young populations, considering the variety of flavors may appeal to children, as well as adolescents seeing the colorful bottles as candy.[113][114]

The e-liquid can be toxic if swallowed, especially among small children.[10] Four adults died in the US and Europe after intentionally ingesting liquid.[115] Two children, one in the US in 2014 and another in Israel in 2013, died after ingesting liquid nicotine.[116] A two-year-old girl in the UK in 2014 was hospitalized after licking an e-cigarette liquid refill.[117]

Calls to US poison control centers related to e-cigarette exposures involved inhalations, eye exposures, skin exposures, and ingestion, in both adults and young children.[118] Minor, moderate, and serious adverse effects involved adults and young children.[119] Minor effects correlated with e-cigarette liquid poisoning were tachycardia, tremor, chest pain and hypertension.[120] More serious effects were bradycardia, hypotension, nausea, respiratory paralysis, atrial fibrillation and dyspnea.[120] The exact correlation is not fully known between these effects and e-cigarettes.[120] The initial symptoms of nicotine poisoning may include rapid heart rate, sweating, feeling sick, and throwing up, and delayed symptoms include low blood pressure, seizures, and hypoventilation.[121] Rare serious effects included coma, seizure, trouble breathing, and heart attack.[122] Since June 2018, the US FDA observed a slight but noticeable increase in reports of seizures.[123] After examining poison control centers' reports between 2010 and early 2019, the FDA determined that, between the poison control centers and the US FDA, there were a total of 35 reported cases of seizures mentioning use of e-cigarettes within that timeframe.[123] Due to the voluntary nature of these case reports, there may be more instances of seizure in e-cigarette users than have been reported.[123]

Since 2011, the number of cases of accidental poisoning from e-liquids that contain nicotine have grown rapidly in the US.[124] From September 1, 2010, to December 31, 2014, 58% of e-cigarette calls to US poison control centers were related to children 5 years old or less.[119] Exposures for children below the age of 6 is a concern because a small dose of nicotine e-liquid may be fatal.[122] A 2014 Centers for Disease Control and Prevention report found 51.1% of the calls to US poison centers due to e-cigarettes were related to children under age 5, and about 42% of the US poison center calls were related to people age 20 and older.[125] E-cigarette calls had a greater chance to report an adverse effect and a greater chance to report a moderate or major adverse effect than traditional cigarette calls.[119] Severe outcomes were more than 2.5 times more frequent in children exposed to e-cigarettes and nicotine e-liquid than with traditional cigarettes.[126]

Звонки в токсикологические центры в США, связанные с электронными сигаретами, составляли от одного звонка в месяц в сентябре 2010 года до 215 звонков в месяц в феврале 2014 года.
Poison control center calls in the US related to e-cigarettes was one call per month in September 2010 to 215 calls per month in February 2014.[125]

The US poison control centers reported 92.5% of children coming in contact with liquid nicotine was from swallowing during the period from January 2012 to April 2017.[122] From September 1, 2010, to December 31, 2014, the most frequent adverse effects to e-cigarettes and e-liquid reported to US poison control centers were: Ingestion exposure resulted in vomiting, nausea, drowsy, tachycardia, or agitation;[119] inhalation/nasal exposure resulted in nausea, vomiting, dizziness, agitated, or headache;[119] ocular exposure resulted in eye irritation or pain, red eye or conjunctivitis, blurred vision, headache, or corneal abrasion;[119] multiple routes of exposure resulted in eye irritation or pain, vomiting, red eye or conjunctivitis, nausea, or cough;[119] and dermal exposure that resulted in nausea, dizziness, vomiting, headache, or tachycardia.[119] The ten most frequent adverse effects to e-cigarettes and e-liquid reported to US poison control centers were vomiting (40.4%), eye irritation or pain (20.3%), nausea (16.8%), red eye or conjunctivitis (10.5%), dizziness (7.5%), tachycardia (7.1%), drowsiness (7.1%), agitation (6.3%), headache (4.8%), and cough (4.5%).[119]

Between January 1, 2016 and April 30, 2016, the American Association of Poison Control Centers (AAPCC) reported 623 exposures related to e-cigarettes.[43] In 2016 AAPCC reported there were a total of 2,907 exposures regarding e-cigarettes and liquid nicotine.[127] The yearly nicotine exposure rate in the US involving children went up by 1398.2% from 2012 to 2015, and later dropped by 19.8% from 2015 to 2016.[122] As of October 31, 2018, there were a total of 2,555 exposures regarding e-cigarettes and liquid nicotine in 2018.[127] The National Poison Data System stated that exposures to e-cigarettes and liquid nicotine among young children is rising significantly.[128]

In 2017, the US Food and Drug Administration states that the e-cigarette aerosol can cause problems for the user and their pets.[129] Some studies have shown that the aerosol made by these devices may expose the user and, therefore, their pets to higher-than-normal amounts of nicotine and other toxic chemicals, like formaldehyde.[129] E-cigarettes use capsules that can contain nicotine.[129] Some of these capsules can be re-filled using a special liquid.[129] Sometimes, pets—mainly dogs—find the capsules and bite them or get into the liquid refilling solution.[129] In a March 15, 2016, letter to the editor of the Journal of the American Veterinary Medical Association, the Texas Poison Center Network reported 11 cases of dogs being exposed to e-cigarettes or refills.[129] Moreover, there is no antidote for nicotine poisoning.[129] The Animal Poison Control Center states that all the nicotine toxicity cases in 2012 included 4.6% of e-cigarettes causes and it increased to 13.6% in 2013.[130]

Second-hand exposure

[edit]

After the aerosol is inhaled, it is exhaled.[4] Emissions from e-cigarettes are not comparable to environmental pollution or cigarette smoke as their nature and chemical composition are completely different.[9] The particles are larger, with the mean size being 600 nm in inhaled aerosol and 300 nm in exhaled aerosol.[78] The exhaled aerosol particle concentration is 5 times lower from an e-cigarette than from a traditional cigarette.[131] The density of particles in the e-cigarette vapor is lower than in cigarette smoke by a factor of between 6 and 880 times lower.[9]

For particulate matter emissions, e-cigarettes slightly exceeded the WHO guidelines, but emissions were 15 times less than traditional cigarette use.[116] In January 2014, the International Union Against Tuberculosis and Lung Disease stated "Adverse health effects for exposed third parties (second-hand exposure) cannot be excluded because the use of electronic cigarettes leads to emission of fine and ultrafine inhalable liquid particles, nicotine and cancer-causing substances into indoor air."[132] The dense vapor consists of liquid sub-micron droplets.[133] Substantial levels of particulate matter with a diameter of 2.5 μm are exhaled by vapers.[87]

Аэрозоль (пар), выдыхаемый пользователем электронной сигареты, может подвергнуть непользователей воздействию вторичного пара.
Aerosol (vapor) exhaled by an e-cigarette user may expose non-users to second-hand vapor.[134]

Since e-cigarettes have not been widely used long enough for evaluation, the long-term health effects from the second-hand vapor are not known.[13] The short-term health effects from the second-hand vapor is also not known.[135] There is insufficient data to determine the impact on public health from e-cigarettes.[136] The potential harm to bystanders from e-cigarettes is unknown.[137] This is because no long-term data is available.[10] There are limited information on the health effects for children inhaling second-hand vapor.[138] Long-term effects for children inhaling second-hand vapor is not known.[138] Vaping has quickly gained public awareness with greater use among adolescents and adults, resulting in greater inhaled second-hand vapor for adolescents, children, and infants.[138] Second-hand vapor does vary depending on the e-liquid, the device and in the way it is used.[139] There is an array in e-cigarette designs, which has an impact on the amounts of ingredients being exposed to non-users.[87] Heavy advertising and promotion included the assertion that vaping would present little risk to bystanders.[140] E-cigarettes are marketed as "free of primary and second-hand smoke risk" due to no carbon monoxide or tar is expected to be generated during use.[141] However, there is a concern for the health impact of nicotine and other ingredients.[141] Exposure to second-hand vapor may be common.[138] Concerns exist that the increased rates of e-cigarette users who have never smoked could cause harms to public health from the increased nicotine addiction.[142] The growing experimentation with vaping among people under that age of 18 is especially concerning in respect to public health.[143] Ethical concerns arise from possibly vulnerable bystanders being exposed to the not yet known health effects of second-hand vapor.[142] Especially compared to the adverse effects of traditional cigarettes, the overall safety of e-cigarettes is not likely to justify significant public health concerns.[142] Overall, there is a possibility they may greatly harm the public's health.[144] Vaping in areas where smoking is banned indoors could be a move in the wrong direction for public health when considering air quality in addition to being unfavorable for an individual who may have quit nicotine use if they did not vape.[145] Some of the few studies examining the effects on health shown that being exposed to e-cigarette vapor may produce biological effects.[13] Their indiscriminate use may be a threat to public health.[146]

Some non-users have reported adverse effects from the second-hand vapor.[147] Second-hand vapor exhaled into the air by e-cigarette users can expose others to potentially harmful chemicals.[134] Vaping exposes non-users to particulate matter with a diameter of 2.5 μm, which poses health risks to non-users.[87] E-cigarettes produce propylene glycol aerosols at levels known to cause eye and respiratory irritation to non-users.[148] A 2014 study demonstrated that non-smokers living with vaping device users were exposed to nicotine.[149] A 2015 study concluded that, for indirect exposure, two chemicals—nicotine and propylene glycol—exceeded California Environmental Protection Agency exposure level standards for noncarcinogenic health effects.[148] Between January 2012 and December 2014, the FDA noted 35 adverse effect reports regarding second-hand vaping exposure.[150] A 2016 survey found a sizable percentage of middle and high school students were exposed to second-hand e-cigarette vapors.[87] It is recommended that adolescents stay away from being exposed to second-hand e-cigarette vapor.[45] A 2016 study showed that most participated coughed right away and briefly following a single exposure to e-cigarette vapor, while after 15 minutes it induced a diminished cough reflex sensitivity in healthy never-smokers.[151] Nicotine-free e-cigarette vapor did not have this effect.[151] The health effects of passive exposure to e-cigarettes with no nicotine, as well as the extent of exposure to these products, have just begun to be studied.[148] E-cigarettes that do not contain nicotine generate hazardous vapors[152] and could still present a risk to non-users.[153] Research has not evaluated whether non-users can have allergic reactions from nut potential allergens in e-cigarette aerosol.[148]

Since e-cigarettes do not burn tobacco, no side-stream smoke or any cigarette smoke is produced.[13] Only what is exhaled by e-cigarettes users enters the surrounding air.[10] It is not clear how much of inhaled e-cigarette aerosol is exhaled into the environment where non-users can be exposed.[148] Exhaled vapor consists of nicotine and some other particles, primarily consisting of propylene glycol, glycerin, flavors, and aroma transporters.[10] Bystanders are exposed to these particles from exhaled e-cigarette vapor.[13] Clean air is safer than e-cigarette vapor.[154] A mixture of harmful substances, particularly nicotine, ultrafine particles, and VOCs can be exhaled into the air.[155] The liquid particles condenses into a viewable fog.[78] The e-cigarette vapor is in the air for a short time, with a half-life of about 10 seconds; traditional cigarette smoke is in the air 100 times longer.[78] This is because of fast revaporization at room temperature.[78]

A 2017 review found that the "rapid production of new products has made it hard for the concerned stakeholders such as researchers in the public health field and policy makers to ensure that the products introduced to the public are safe for the users and non-users who are involuntarily exposed to e-cigarette vapors."[149] Little research exists on the exhaled particles, nicotine, and cancer-promoting chemicals into indoor air.[156] Concern exists that some of the mainstream vapor exhaled by e-cigarette users may be inhaled by bystanders, particularly indoors.[63] People living with e‐cigarette users had increased salivary concentrations of cotinine.[87] A small number of e-cigarette studies exist on the effect of indoor air quality done on human test subjects in natural settings.[149] Though, the available studies presented conflicting scientific evidence on the exact exposure from the e-cigarette vapor contents which may be a result of the contrasting methodology used during the research process.[149] Vaping can expose non-users to aldehydes and it reduced indoor air quality due to their released aldehydes.[87] Since e-cigarettes involve an aerosolization process, it is suggested that no meaningful amounts of carbon monoxide are emitted.[157] Thus, cardiocirculatory effects caused by carbon monoxide are not likely.[157] However, in an experimental study, e-cigarettes increased levels of carcinogenic polycyclic aromatic hydrocarbons in the surrounding air.[157] Passive inhalation of vapor might have significant adverse effects.[63] Though, e-cigarettes exposes non-users to nicotine but not to tobacco-related combustion toxicants.[63] Exposure to e-cigarette vapor can reduce lung function.[158]

E-cigarettes do pollute the air in the form of exhaled mainstream aerosol from people using e-cigarettes.[35] Nicotine, ultrafine particles, and products of heating propylene glycol and glycerin are increased in the air where e-cigarettes are being used, although, as expected, at lower levels than produced by smoking the same number of traditional cigarettes.[35] As with traditional cigarettes, however, when several people are using e-cigarettes indoors at the same time, the air can become polluted.[35] For example, levels of fine particulate matter (PM2.5) in a large hotel event room (4,023m3) increased from 2–3 μg/m3 to as high as 819 μg/m3 (interquartile range: 761–975 μg/m3) when 59–86 people were using e-cigarettes.[35] This level is comparable to a very (conventional tobacco) smoky bar or casino and dramatically exceeds the US Environmental Protection Agency annual time-weighted standard for PM2.5 of 12 μg/m3.[35]

Evidence has also shown that bystanders absorb nicotine when people around them use e-cigarettes at levels comparable with exposure to traditional cigarette second-hand smoke.[35] In a study of non-smokers living with nicotine e-cigarette users, those living with traditional cigarette smokers, or those living in homes where no one used either product, cotinine (a metabolite of nicotine) levels in bystanders' urine were significantly elevated in both the people exposed to second-hand e-cigarette aerosol and those exposed to second-hand tobacco smoke compared with people living in aerosol- and smoker-free homes.[35] Interestingly, the levels of elevated urinary cotinine in the two exposed groups were not significantly different (although the passive smokers had higher point estimates), despite the fact that the increase in air pollution in the smokers' homes was much higher than in the e-cigarette users' homes (geometric mean air nicotine concentrations of 0.13 μg/m3 in e-cigarette users' homes, 0.74 μg/m3 in smokers' homes, and 0.02 μg/m3 in the control homes).[35]

On the basis of emerging evidence, in 2014 the American Industrial Hygiene Association concluded that "e-cigarettes are not emission-free and that their pollutants could be of health concern for users and those who are exposed secondhand....[T]heir use in the indoor environment should be restricted, consistent with current smoking bans, until and unless research documents that they will not significantly increase the risk of adverse health effects to room occupants."[35] Similarly, in 2016 the American Society of Heating, Refrigeration and Air-Conditioning Engineers (ASHRAE) updated its standard for "Ventilation for Acceptable Indoor Air Quality" to incorporate emissions from e-cigarettes into the definition of "environmental tobacco smoke," which is incompatible with acceptable indoor air quality.[35] As of April 2017, 12 US states and 615 localities had prohibited the use of e-cigarettes in venues in which traditional cigarette smoking was prohibited.[35]

There are benefits to banning vaping indoors in public and working areas, since there is a potential harm of renormalizing tobacco use in smoke-free areas, in addition to, vaping may result in spread of nicotine and other chemicals indoors.[159] E-cigarettes used in indoor environments can put at risk non-smokers to elevated levels of nicotine and aerosol emissions.[131] Non-smokers exposed to e-cigarette aerosol produced by a machine and pumped into a room were found to have detectable levels of the nicotine metabolite cotinine in their blood.[13] The same study stated that 80% of nicotine is normally absorbed by the user, so these results may be higher than in actual second-hand exposure.[13] A 2015 PHE report concluded that e-cigarettes "release negligible levels of nicotine into ambient air with no identified health risks to bystanders".[160] The e-cigarette vapor creates personal exposures that would warrant supervision.[161]

Знак запрета на курение и вейпинг из США.
A no smoking or vaping sign from the US

The available evidence demonstrates that the e-cigarette vapor emitted from e-cigarettes is not just "harmless water vapor" as is repeatedly stated in the advertising of e-cigarettes, and they can cause indoor air pollution.[13] A 2014 practice guideline by NPS MedicineWise states, "Although data on health effects of passive vapour are currently lacking, the risks are argued to be small, but claims that e-cigarettes emit only water vapour are nevertheless incorrect. Serum cotinine levels (a metabolite of nicotine) have been found to be similar in bystanders exposed to either e-cigarette vapour or cigarette smoke."[162] A 2015 California Department of Public Health has reported that "Mainstream and secondhand e-cigarette aerosol has been found to contain at least ten chemicals that are on California's Proposition 65 list of chemicals known to cause cancer, birth defects, or other reproductive harm."[163]

A white paper published in 2014 by the American Industrial Hygiene Association concluded e-cigarettes emit airborne contaminants that may be inhaled by the user and those nearby.[164] Due to this possible risk, they urged restriction of their use indoors, similar to smoking bans, until research has shown the aerosol does not significantly harm others in the area.[164] A 2014 review suggested that the levels of inhaled contaminants from the e-cigarette vapor are not of significant health concern for human exposures by the standards used in workplaces to ensure safety.[161] The compounds that are present, are mostly below 1% of the corresponding levels permissible by workplace safety standards.[161] But workplace safety standards do not recognize exposure to certain vulnerable groups such as people with medical ailments, children, and infants who may be exposed to second-hand vapor.[13] Some chemicals from e-cigarette exposures could surpass workplace safety standards.[165] E-cigarette convention studies indicate that second-hand e-cigarette vapor may be significant for workers in conventions where there are people using e-cigarettes, particularly those who encounter the vapor in more than one of these events.[166] Exposure studies suggest that e-cigarette use in indoor areas is higher than the smoke-free level put forth by the US Surgeon General and the WHO Framework Convention on Tobacco Control.[166] The use of e-cigarettes in a smoke-free area could expose non-users to toxicants.[167] The effect on users and bystanders is probably much less harmful than traditional cigarettes.[10]

Second-hand vapor exposes bystanders to numerous pollutants at amounts higher than background air.[153] A 2016 WHO (World Health Organization)report stated that "While some argue that exposure to SHA [second-hand aerosol] is unlikely to cause significant health risks, they concede that SHA can be deleterious to bystanders with some respiratory pre-conditions. It is nevertheless reasonable to assume that the increased concentration of toxicants from SHA over background [air] levels poses an increased risk for the health of all bystanders."[168] A 2014 WHO report stated passive exposure was a concern, indicating that current evidence is insufficient to determine whether the levels of exhaled vapor are safe to involuntarily exposed bystanders.[3] The report stated that "it is unknown if the increased exposure to toxicants and particles in exhaled aerosol will lead to an increased risk of disease and death among bystanders."[3] The British Medical Association (BMA) reported in 2013 that there are "concerns that the use of e-cigarettes could threaten the norm of not smoking in public places and workplaces."[169] Several medical organizations advocate that vaping be banned in public places and workplaces.[145] A 2014 review found it is safe to infer that their effects on bystanders are minimal in comparison to traditional cigarettes.[9] E-cigarette vapor has notably fewer toxicants than cigarette smoke.[13]

Third-hand

[edit]

E‐cigarettes can be unsafe to non-users via third-hand exposure, including children, pregnant women, casino employees, housekeeping employees, and vulnerable groups.[87] E-cigarette use by a parent might lead to inadvertent health risks to offspring.[170] E-cigarettes pose many safety concerns to children.[170] For example, indoor surfaces can accumulate nicotine where e-cigarettes were used, which may be inhaled by children, particularly youngsters, long after they were used.[170] A policy statement by the American Association for Cancer Research and the American Society of Clinical Oncology has reported that "Third-hand exposure occurs when nicotine and other chemicals from second-hand aerosol deposit on surfaces, exposing people through touch, ingestion, and inhalation".[11] A 2015 PHE report stated the amount of nicotine deposited was low and that an infant would have to lick 30 square meters to be exposed to 1 mg of nicotine.[160] There are no published studies of third-hand exposure from e-cigarettes, however initial data suggests that nicotine from e-cigarettes may stick to surfaces and would be hard to remove.[11] The extent of third-hand contamination indoors from e-cigarettes in real-world settings has not been established but would be of particular concern for children living in homes of e-cigarette users, as they spend more time indoors, are in proximity to and engage in greater activity in areas where dust collects and may be resuspended (e.g., carpets on the floor), and insert nonfood items in their mouths more frequently.[148]

Direct exposure

[edit]
Жидкости для электронных сигарет с фруктовым вкусом.
Fruit flavored e-liquids

There is a possibility that inhalation, ingestion, or skin contact can expose people to high levels of nicotine.[63] Concerns with exposure to the e-liquids include leaks or spills and contact with contaminants in the e-liquid.[74] This may be especially risky to children, pregnant women, and nursing mothers.[63] The FDA intends to develop product standards around concerns about children's exposure to liquid nicotine.[171] E-liquid exposure whether intentional or unintentional from ingestion, eye contact, or skin contact can cause adverse effects such as seizures, anoxic brain trauma, throwing up, and lactic acidosis.[172] The liquid does quickly absorb into the skin.[173] Local irritation can be induced by skin or mucosal nicotine exposure.[174] The nicotine in e-liquid can be hazardous to infants.[175] Even a portion of e-liquid may be lethal to a little child.[176] An excessive amount of nicotine for a child that is capable of being fatal is 0.1–0.2 mg/kg of body weight.[63] Less than a 1 tablespoon of contact or ingestion of e-liquid can cause nausea, vomiting, cardiac arrest, seizures, or coma.[177] An accidental ingestion of only 6 mg may be lethal to children.[39][146]

Children are susceptible to ingestion due to their curiosity and desire for oral exploration.[126] Children could confuse the fruity or sweet flavored e-liquid bottles for fruit juices.[84] E-liquids are packed in colorful containers[119] and children may be attracted to the flavored liquids.[178] More youth-oriented flavors include "My Birthday Cake" or "Tutti Frutti Gumballs".[116] Many nicotine cartridges and bottles of liquid are not child-resistant to stop contact or accidental ingestion of nicotine by children.[83] "Open" e-cigarette devices, with a refillable tank for e-liquids, are believed to be the biggest risk to young children.[177] If flavored e-cigarettes are let alone, pets and children could be attracted to them.[179] The FDA states that children are curious and put all sorts of things in their mouths.[180] Even if you turn away for a few seconds, they can quickly get into things that could harm them.[180] The FDA recommends that adults can help prevent accidental exposure to e-liquids by always putting their e-cigarettes and e-liquids up and away—and out of kids' and pets' reach and sight—every time you use them.[180] The FDA recommends to also ask family members, house guests, and other visitors who vape to keep bags or coats that hold e-cigarettes or e-liquids up and away and out of reach and sight of children and pets.[180] They recommend for children old enough to understand, explain to them that these products can be dangerous and should not be touched.[180] The FDA states to tell kids that adults are the only people who should handle these products.[180]

As part of ongoing efforts to protect youth from the dangers of nicotine and tobacco products, the US FDA and the Federal Trade Commission announced on May 1, 2018, they issued 13 warning letters to manufacturers, distributors, and retailers for selling e-liquids used in e-cigarettes with labeling and/or advertising that cause them to resemble kid-friendly food products, such as juice boxes, candy or cookies, some of them with cartoon-like imagery.[181] Several of the companies receiving warning letters were also cited for illegally selling the products to minors.[181] "No child should be using any tobacco product, and no tobacco products should be marketed in a way that endangers kids – especially by using imagery that misleads them into thinking the products are things they would eat or drink. Looking at these side-to-side comparisons is alarming. It is easy to see how a child could confuse these e-liquid products for something they believe they have consumed before – like a juice box. These are preventable accidents that have the potential to result in serious harm or even death. Companies selling these products have a responsibility to ensure they are not putting children in harm's way or enticing youth use, and we'll continue to take action against those who sell tobacco products to youth and market products in this egregious fashion," the FDA Commissioner Dr. Scott Gottlieb, said in 2018.[181] E-liquids have been sold in packaging that looks similar to Tree Top-brand juice boxes, Reddi-wip whipped cream, and Sour Patch Kids gummy candy.[182]

The US FDA announced on August 23, 2018, that all 17 manufacturers, distributors and retailers that were warned by the agency in May, have stopped selling the nicotine-containing e-liquids used in e-cigarettes with labeling or advertising resembling kid-friendly food products, such as juice boxes, candy or cookies that were identified through warning letters as being false or misleading.[183] Following the warning letters in May, the FDA worked to ensure the companies took appropriate corrective action – such as no longer selling the products with the misleading labeling or advertising – and issued close-out letters to the firms. The agency expects some of the companies may sell the products with revised labeling that addresses the concerns expressed in the warning letters.[183] "Removing these products from the market was a critical step toward protecting our kids. We can all agree no kid should ever start using any tobacco or nicotine-containing product, and companies that sell them have a responsibility to ensure they aren't enticing youth use. When companies market these products using imagery that misleads a child into thinking they're things they've consumed before, like a juice box or candy, that can create an imminent risk of harm to a child who may confuse the product for something safe and familiar," said FDA Commissioner Scott Gottlieb.[183]

There is growing evidence that vaping is hazardous to your health including depression which increases the risk of suicidal thoughts and suicide.[184] Nicotine toxicity is of concern when e-cigarette solutions are swallowed intentionally by adults as a suicidal overdose.[32] Seizures or convulsions are known potential side effects of nicotine toxicity and have been reported in the scientific literature in relation to intentional or accidental swallowing of e-liquid.[123] Six people attempted suicide by injecting e-liquid.[115] One adolescent attempted suicide by swallowing the e-liquid.[12] Three deaths were reported to have resulted from swallowing or injecting e-liquid containing nicotine.[115] An excessive amount of nicotine for an adult that is capable of being fatal is 0.5–1 mg/kg of body weight.[63] An oral lethal dose for adults is about 30–60 mg.[19] However the widely used human LD50 estimate of around 0.8 mg/kg was questioned in a 2013 review, in light of several documented cases of humans surviving much higher doses; the 2013 review suggests that the lower limit resulting in fatal events is 500–1000 mg of ingested nicotine, which is equivalent to 6.5–13 mg/kg orally.[185] Reports of serious adverse effects associated with acute nicotine toxicity that resulting in hospitalization were very uncommon.[147] Death from intentional nicotine poisoning is very uncommon.[186] Clear labeling of devices and e-liquid could reduce unintentional exposures.[119] Child-proof packaging and directions for safe handling of e-liquids could minimize some of the risks.[175] Some vaping companies willingly used child-proof packaging in response to the public danger.[113] In January 2016, the Child Nicotine Poisoning Prevention Act of 2015 was passed into law in the US,[187] which requires child-proof packaging.[188] The nicotine exposure rate in the US has since dropped by 18.9% from August 2016 to April 2017, following the Child Nicotine Poisoning Prevention Act of 2015, a federal law mandating child-resistant packaging for e-liquid, came into effect, on July 26, 2016.[122] The states in the US that did not already have a law, experienced a notable decline in the average number of exposures during the 9 months after the Child Nicotine Poisoning Prevention Act of 2015 came into effect compared to before it became law.[122] E-liquids have been observed in 2016 to include a press-and-turn feature similar to what is used for aspirin.[113] E-liquids that were normally available in bottles that were not regarded as child-resistant, have been reported in 2016.[113]

There was inconsistent labeling of the actual nicotine content on e-liquid cartridges from some brands,[13] and some nicotine has been found in "no nicotine" liquids.[78] A 2015 PHE report noted overall the labelling accuracy has improved.[189] Most inaccurately-labelled examples contained less nicotine than stated.[189] Due to nicotine content inconstancy, it is recommended that e-cigarette companies develop quality standards with respect to nicotine content.[4]

Because of the lack of production standards and controls, the pureness of e-liquid are generally not dependable, and testing of some products has shown the existence of harmful substances.[175] The German Cancer Research Center in Germany released a report stating that e-cigarettes cannot be considered safe, in part due to technical flaws that have been found.[39] This includes leaking cartridges, accidental contact with nicotine when changing cartridges, and potential of unintended overdose.[39] The Therapeutic Goods Administration (TGA) of Australia has stated that, "Some overseas studies suggest that electronic cigarettes containing nicotine may be dangerous, delivering unreliable doses of nicotine (above or below the stated quantity), or containing toxic chemicals or carcinogens, or leaking nicotine. Leaked nicotine is a poisoning hazard for the user of electronic cigarettes, as well as others around them, particularly children."[190]

Cannabinoid-enriched e-liquids require lengthy, complex processing, some being readily available online despite lack of quality control, expiry date, conditions of preservation, or any toxicological and clinical assessment.[191] It is assumed that vaporizing cannabinoids at lower temperatures is safer because it produces smaller amounts of toxicants than the hot combustion of a cannabis cigarette.[191] The health effects specific to vaping these cannabis preparations is largely unknown.[191] However, cannabinoid-containing e-cigarettes are often mixed with other diluents and chemicals including vitamin E acetate, which has been associated with the onset of e-cigarette associated lung injury (EVALI). [192] There is no clear association between EVALI prevalence and the use of cannabinoid e-cigarettes, suggesting that the cannabinoid-enriched e-liquids may also contain various toxins when acquired from informal sources that might lead to EVALI. [193]

Toxicology

[edit]

The long-term health impacts of e-cigarette use are unknown.[10] A 2017 review found "The exposure of EC users to potentially toxic chemical emissions is difficult to quantify, given the numerous types of EC devices, different e‑liquids, and disparities in individual use patterns."[194] The long-term health impacts of the main chemicals nicotine and propylene glycol in the aerosol are not fully understood.[195] There is limited peer-reviewed data about the toxicity of e-cigarettes for a complete toxicological evaluation,[196] and their cytotoxicity is unknown.[197] The chemicals and toxicants included in e-cigarettes have not been completely disclosed and their safety is not guaranteed.[63] A 2014 study "indicates that very few commercially marketed e-cigarettes have undergone a thorough toxicology evaluation and standardized testing for evaluating e-cigarette toxicity across brands."[198] They are similar in toxicity to other nicotine replacement products,[20] but e-cigarettes manufacturing standards are variable standards, and many as a result are probably more toxic than nicotine replacement products.[199] The UK National Health Service noted that the toxic chemicals found by the FDA were at levels one-thousandth that of cigarette smoke, and that while there is no certainty that these small traces are harmless, initial test results are reassuring.[200] While there is variability in the ingredients and concentrations of ingredients in e-cigarette liquids, tobacco smoke contains thousands of chemicals, most of which are not understood and many of which are known to be harmful.[62]

Carcinogenicity

[edit]

Concerns about the carcinogenicity of e-cigarettes arise from both nicotine[201] and from other chemicals that may be in the vapor.[4] As regards nicotine, there is evidence from in vitro and animal research that nicotine may have a role as a tumor promoter, but carcinogenicity has not been demonstrated in vivo.[201] A 2014 Surgeon General of the United States report stated that the single relevant randomized trial "does not indicate a strong role for nicotine in promoting carcinogenesis in humans".[202] They concluded that "There is insufficient data to conclude that nicotine causes or contributes to cancer in humans, but there is evidence showing possible oral, esophageal, or pancreatic cancer risks".[202] Nicotine in the form of nicotine replacement products is less of a cancer risk than with smoking,[203] and they have not been shown to be associated with cancer in the real world.[201] Nicotine promotes metastasis by causing cell cycle progression, epithelial-to-mesenchymal transition, migration, invasion, angiogenesis, and avoidance of apoptosis in a number of systems.[204] Nicotine does promote the growth of blood vessels that supply tumors and it speeds tumor growth.[35] Whether long-term vaping can raise the chance for malignancy in individuals with a susceptibility for tumor growth is unknown.[205] The effects of nicotine on the sympathoadrenal system could stimulate the advancement of cancer in people who have cancer.[206]

Nicotine has been shown to induce DNA damage in the Escherichia colipol A+/pol− test.[207] Low concentrations of nicotine stimulate cell proliferation, while high concentrations are cytotoxic.[207] Nicotine decreases the tumor suppressor Chk2, which is activated by DNA damage.[207] The decrease in Chk2 in cells exposed to nicotine suggests that nicotine may be capable of overriding DNA damage checkpoint activation, disrupting genetic surveillance, and increasing the risk of oncogenesis.[207] There is strong evidence that some substances found in e-cigarette vapors such as formaldehyde and acrolein can induce DNA damage and mutagenesis.[208]

Nicotine promotes endothelial cell migration, proliferation, survival, tube formation, and nitric oxide (NO) production in vitro, mimicking the effect of other angiogenic growth factors.[207] In 2001, it was found that nicotine was a potent angiogenic agent at tissue and plasma concentrations similar to those induced by light to moderate smoking.[207] Effects of nicotine on angiogenesis have been demonstrated for a number of tumor cells, such as breast, colon, and lung.[207] Similar results have also been demonstrated in in vivo mouse models of lung cancer, where nicotine significantly increased the size and number of tumors in the lung, and enhanced metastasis.[207]

A 2014 study suggested that e-cigarette use may be a risk factor for lung cancer.[31] In several in vitro experiments, it has been found that nicotine in concentrations as low as 1 μM decreased the anti-proliferative and pro-apoptotic effects exerted by chemotherapeutics on several different malignant cell lines.[207] These effects were partially reverted by exposure to α-bungarotoxin (α-BTX), an inhibitor of α7-nAChR.[207] In the case of radiotherapy (RT), nicotine administration increased survival of H460 and A549 lung cancer cells.[207] This effect was likewise reduced by addition of α-BTX prior to nicotine addition and radiation.[207] On this basis, it is expected that use of nicotine products during cancer treatment may reduce the effects due to reactions following interaction of nicotine with α7-nAChR.[207]

Эндогенное образование табачных нитрозаминов (TSNA) может происходить после всасывания никотина.
Endogenous formation of tobacco-specific nitrosamines (TSNAs) may occur after absorption of nicotine.[207]

Evidence from experimental in vitro studies on cell cultures, in vivo studies on rodents as well as studies on humans inclusive of epidemiological studies indicate that nicotine may contribute in cancer development by stimulating a number of important processes.[207] Nicotine acts primarily by activation of nicotine acetylcholine receptors and nicotine binds to these receptors with a higher affinity than acetylcholine.[207] Furthermore, the tobacco-specific nitrosamines (TSNAs) NNN (N′-nitrosonornicotine) and NNK (4-(metylnitrosamino)-1-(3-pyridyl)-1-butanon) may be formed from nicotine after oral administration.[207] E-cigarettes deliver the potent lung carcinogen NNK.[35] Some evidence indicates that the NNK dose-response curve for cancer is highly nonlinear, with substantial increases in risk at low doses.[35] Known bladder carcinogens have been detected in the urine of e-cigarette users but not in non-users.[35] A 2015 study reported that the urine from users of e-cigarettes had very low levels of NNAL (4-(methylnitrosamino)-1-(3-pyridyl)-1-butanol), which may suggest that endogenous formation of TSNA after nicotine inhalation is negligible.[207] The data does indicate that TSNA may be formed internally after absorption of nicotine through the mucous membranes in the oral cavity and through the skin, while formation after lung absorption may be negligible.[207] Thus, the toxicokinetics of nicotine may depend on the route of administration.[207] The role of nicotine in carcinogenesis is of great importance in the evaluation of potentially harmful effects from non-tobacco related sources of nicotine, such as e-cigarettes.[207]

Nicotine has been shown to induce chromosomal aberration, chromatid exchange, single-strand DNA strand breaks, and micronuclei in vitro.[207] Oxidative stress is probably involved since the effects are reduced in the presence of antioxidants.[207] The finding that the effects decrease after co-incubation with a nicotinic acetylcholine receptor antagonist indicates a receptor-dependent pathway for induction of oxidative stress.[207]

The interaction of nicotine with nicotinic acetylcholine receptors activates signaling pathways that result in a number of reactions, such as increased cell proliferation and cell survival.[207] Although nicotinic acetylcholine receptors are the primary receptors, binding of nicotine to β-ARs and EGFRs may also be important.[207] Nicotine induces epithelial–mesenchymal transition, which is one of the vital steps for the acquisition of malignant phenotype.[207] This transition allows the cell to acquire migratory properties, which may facilitate cancer metastases.[207] Moreover, nicotine induces changes that mimic the effects of angiogenic growth factors.[207]

At present, it is not possible to draw a conclusion whether nicotine itself may act as a complete carcinogen.[207] In mice studies with NNK as an initiator, nicotine acts as a promoter after injection or dermal absorption, but not after oral administration.[207] In drinking water experiments, there is considerable first-pass metabolism of nicotine before nicotine enters the systemic circulation.[207] As a result, serum concentration is much lower after ingestion than after intraperitoneal injection administration.[207] Nicotine enhanced tumor growth and progression after injection of malignant cells in mice.[207] Enhancements were found both after exposure of nicotine by intraperitoneal injection, oral, and skin administration.[207] Moreover, cotinine did also enhance tumor growth.[207] Nicotine may inhibit antitumor immune response.[207] It has also been reported that exposure to nicotine adversely affects dendritic cells, a cell type that has an important role in anticancer immunosurveillance.[207] Moreover, in studies on xenograft in mice, nicotine has been found to reduce the effect of radiotherapy and chemoradiotherapy.[207]

There is no long-term research concerning the cancer risk related to the potentially small level of exposure to the identified carcinogens in the e-cigarette vapor.[131] Their long-term effect on risk of developing cancer is not known.[209] Their long-term use is anticipated to raise the risk of developing lung cancer.[210] A 2015 study found carcinogenicity was mainly evident in the lungs, mouth, and throat, which may be associated with nitrosamines, propylene glycol and some flavoring additives.[87] Vaping is associated with a possible risk of developing head and neck cancers.[211] In May 2014, Cancer Research UK stated that there are "very preliminary unpublished results that suggest that e-cigarettes promote tumour growth in human cells."[195] The e-cigarette vapors triggered DNA strand breaks and lowered cell survival in vitro,[115] regardless of nicotine content.[117] A 2013 study found some samples of e-cigarette vapors had cytotoxic effects on cardiac muscle cells, though the effects were less than with cigarette smoke.[212] Studies demonstrate that e-cigarette vapor have adverse effects on primary airway epithelial cells and tumor cell lines, and other epithelial cell lines, that ranged from reducing viability, an increase in production of inflammatory mediators and oxidative stress, to reducing antimicrobial defences and pro-carcinogenic events.[213] In October 2012, the World Medical Association stated, "Manufacturers and marketers of e-cigarettes often claim that use of their products is a safe alternative to smoking, particularly since they do not produce carcinogenic smoke. However, no studies have been conducted to determine that the vapor is not carcinogenic, and there are other potential risks associated with these devices."[214]

Диаграмма, показывающая различные токсичные вещества, измеренные в сигаретном дыме и аэрозолях электронных сигарет.
Chart showing various toxicants as measured in cigarette smoke and e-cigarette aerosol[215]

Since nicotine-containing e-liquids are made from tobacco they may contain impurities like cotinine, anabasine, anatabine, myosmine and beta-nicotyrine.[10] The health implications of nicotine-related impurities are not known.[148] A 2016 review found "Some studies have demonstrated that impurities and nicotine degradation products such as nicotine-cis-N-oxide, nicotine-trans-N-oxide, myosmine, anabasine, and anatabine, which are very carcinogenic, can be found in e-cigarette refill liquids. The molecules can lead to mutations in genes such as Ras (vital function in signal transduction of cell proliferation), p53 and Retinoblastoma (with roles as tumour suppressors) as these molecules can form adducts with cellular DNA."[84] The majority of e-cigarettes evaluated included carcinogenic TSNAs; heavy metals such as cadmium, nickel, and lead; and the carcinogen toluene.[63] However, in comparison to traditional cigarette smoke, the toxic substance levels identified in e-cigarette vapor were 9- to 450-fold less.[63] E-liquid with tin was cytotoxic.[216] E-cigarettes cannot be considered absolutely safe because there is no safe level for carcinogens.[217]

A 2014 review found higher levels of carcinogens and toxicants than in an FDA regulated nicotine inhaler, suggesting that regulated FDA devices may deliver nicotine more safely.[131] In 2014, the World Lung Foundation (now known as Vital Strategies) stated that "Researchers find that many e-cigarettes contain toxins, contaminants and carcinogens that conflict with the industry's portrayal of its products as purer, healthier alternatives. They also find considerable variations in the amount of nicotine delivered by different brands. None of this information is made available to consumers so they really don't know what they are ingesting, or how much."[156]

A 2014 review found "Various chemical substances and ultrafine particles known to be toxic, carcinogenic and/or to cause respiratory and heart distress have been identified in e-cigarette aerosols, cartridges, refill liquids and environmental emissions."[4] Few of the methods used to analyze the chemistry of e-cigarettes in the studies the review evaluated were validated.[4] Many variables affect the levels of toxicants in the e-cigarette vapor, including the design, the type of liquid, and user behavior.[147] The FDA in 2009 analyzed e-liquid cartridge samples[201] from two brands of e-cigarettes,[218] which were NJOY and Smoking Everywhere.[217] Their analysis of the e-cigarette samples showed that the products contained detectable levels of known carcinogens and toxic chemicals to which users could potentially be exposed.[219] Diethylene glycol was detected in one cartridge at approximately 1%.[219] Diethylene glycol, an ingredient used in antifreeze, is toxic to humans.[219] The source of the diethylene glycol contamination is not clear but could reflect the use of non-pharmaceutical grade propylene glycol.[30] On July 22, 2009,[218] the FDA warned that e-cigarettes may present a health risk.[131]

Other chemicals in vapor on the California Prop 65 list of chemicals known to cause cancer or reproductive harm include benzenene and isoprene.[220]

Propylene glycol and other content

[edit]
Изображение молекулы пропиленгликоля
The propylene glycol molecule

The primary base ingredients of the liquid solution is propylene glycol and glycerin.[13] About 20% to 27% of propylene glycol and glycerin-based liquid particles are inhaled.[221] A 2016 study found that 6% of nicotine, 8% of propylene glycol, and 16% of glycerin was breathed out by e-cigarette users.[222] The long-term effects of inhaled propylene glycol has not been studied,[178] and is unknown.[142] The effects of inhaled glycerin are unknown.[146] Being exposed to propylene glycol may cause irritation to the eyes and respiratory tract.[13] When propylene glycol is heated and aerosolized, it could turn into propylene oxide, which the International Agency for Research on Cancer (IARC) states is possibly carcinogenic to humans.[13][117] The risk from the inhalation of propylene glycol and glycerin is probably low.[10] Propylene glycol and glycerin have not been shown to be safe.[146] Some research states that propylene glycol emissions may cause respiratory irritation and raise the likelihood to develop asthma.[27] Long-term inhalation of propylene glycol indoors could increase risk to children to develop asthma.[39] To lessen the risks, some e-cigarettes companies began to use water and glycerin as replacement for propylene glycol.[27] The inhaled glycerin could cause lipoid pneumonia.[223] Propylene glycol and glycerin had increased the amount of hydrogen peroxide.[224]

Some e-cigarette products had acrolein identified in the aerosol.[10] It may be generated when glycerin is heated to higher temperatures.[10] Acrolein is a probable carcirogen.[225] Acrolein may induce irritation to the upper respiratory tract,[13] and harm the lining of the lungs.[226] Acrolein induces oxidative stress and inflammation, leading to a disruption in the function of the endothelial cell barrier in the lung.[224] Acrolein may lead to chronic obstructive pulmonary disease.[224] Acrolein levels were reduced by 60% in dual users and 80% for those that completely switched to e-cigarettes when compared to traditional cigarettes.[10] A 2017 review stated that "based on the average of 120 puffs/day reported in the literature, our calculated levels of acrolein emitted by e‐cigarette users per day were found to vary between 0.00792 and 8.94 ppm/day."[87] E-cigarettes vapor have been found to create oxidants and reactive oxygen species (OX/ROS).[72] OX/ROS could react with other substances in the e-cigarette vapor because they are highly reactive.[72] Although e-cigarettes have been found to contain OX/ROS at about 100 times less than in cigarette smoke, they probably induce meaningful biological effects.[72] A 2014 study showed that e-liquids from a specific manufacturer contained greater amounts of ethylene glycol than glycerin or propylene glycol, but ethylene glycol has not been permitted for use in products meant for human consumption.[143]

The toxicity of e-cigarettes and e-liquid can vary greatly, as there are differences in construction and materials in the delivery device, kind and origin of ingredients in the e-liquid, and the use or non-use of good manufacturing practices and quality control approaches.[196] If exposure of aerosols to propylene glycol and glycerin rises to levels that one would consider the exposure in association with a workplace setting, it would be sensible to investigate the health of exposed persons.[161] The short-term toxicity of e-cigarette use appears to be low, with the exception for some people with reactive airways.[78]

Flavoring

[edit]
Ингредиенты картриджа для электронных сигарет: дистиллированная вода, никотин, растительный глицерин класса FCC, натуральные ароматизаторы, искусственные ароматизаторы, лимонная кислота. Содержание никотина 6–8 мг на картридж.
The ingredients in an e-cigarette cartridge: Distilled water, Nicotine, FCC Grade Vegetable Glycerin, Natural Flavors, Artificial Flavors, Citric Acid. Nicotine content 6-8 mg per cartridge.

The essential propylene glycol and/or glycerin mixture may consist of natural or artificial substances to provide it flavor.[78] Health effects of e-cigarette flavorings are not entirely known.[227] There is very limited toxicological data on inhaling flavoring additives.[165] Flavorings can be a significant part of toxicants in the e-cigarette vapor.[228] Each flavor has a different chemical composition, and therefore, probably, a distinct composition of toxicant emissions.[228] The cytotoxicity of e-liquids varies,[77] and contamination with various chemicals have been detected in the liquid.[78] Some liquids were very toxic and others had little or no cytotoxicity.[77] The cytotoxicity is mostly due to the amount and number of flavors added.[77] Since nicotine has a bitter taste, nicotine e-liquids contain chemicals to cover up the nicotine taste.[72] The liquids contain aromatic substances like tobacco, fruit, vanilla, caramel, and coffee.[78] Generally, these additives are imprecisely described, using terms such as "vegetable flavoring".[78] Although they are approved for human consumption there are no studies on the short-term or long-term effects of inhaling them.[78] The safety of inhaling flavors is mostly unknown,[75] and their safety has not been determined by the Flavor and Extract Manufacturers Association.[115] The majority of flavorings in e-liquids have not been investigated for toxicity by means of inhalation.[229] A 2017 review found the Flavor and Extract Manufacturers Association of the USA, a trade association of flavor ingredient manufacturers which evaluates the safety of food flavorings, has identified 1037 flavoring agents as potential respiratory hazards due to possible volatility and respiratory irritant properties. Common e-cig flavoring agents on this list include, but are not limited to: diacetyl, acetoin, 2,3-pentanedione (buttery flavors), camphor and cyclohexanone (minty flavors), benzaldehyde (cherry or almond flavors), cinnamaldehyde (cinnamon flavor), cresol (leathery or medicinal flavor), butyraldehyde (chocolate flavor), and isoamyl acetate (banana flavor)."[165] A 2017 review stated, "the implication by manufacturers that flavor ingredients used in e-cigarettes and related devices (e.g. hookahs) are safe for inhalation because they have FEMA GRAS™ status for use in food has been stated to be 'false and misleading' by FEMA."[47]

The extensive and unregulated use of flavoring additives may pose health concerns.[165] Many flavors are irritants.[210] The limited data available on their flavoring agents suggest that the majority of flavorings could lead to significant health risks from long-term use, particularly the ones that are sweet.[145] In some cases e-liquids contain very large amounts of flavorings, which may cause irritation and inflammation on respiratory and cardiovascular systems.[73] A 2016 study of 30 e-cigarette products in the US market found that 13 were more than 1% flavor chemicals by weight, some of which were of potential toxicological concern (e.g., cause respiratory irritation).[230] Some flavors are regarded as toxic and a number of them resemble known carcinogens.[78] The cytotoxicity of some flavors such as strawberry seems to be greater than others.[231] A 2016 study of five flavors across six types of e-cigarettes found that flavors significantly affected the in vitro toxicity profile and the strawberry-flavored product was the most toxic.[230] Some artificial flavors are known to be cytotoxic.[78] Unflavored vapor is less cytotoxic than flavored vapor.[232] A 2012 study demonstrated that in embryonic and adult cellular models, some substances of the e-cigarette vapor such as flavoring not found in tobacco smoke were cytotoxic.[233] The caffeine exposures from vaping are approximately at amounts considerably less than in comparison with consuming caffeinated beverages.[234] There is very limited information available regarding the effects of breathing in caffeine.[234] The evidence is unclear that particular flavorings carry health risks, though there are indications that breathing in some may be a source of avoidable risks.[235]

Cinnamaldehyde has been described as a highly cytotoxic material in vitro in cinnamon-flavored refill liquids.[71] Cinnamaldehyde has also been detected in tobacco flavors, sweet flavors (e.g. caramel), and fruit flavors.[236] Cinnamaldehyde have been identified as cytotoxic at the amount of about 400 times less than those allowed for use by the US Environmental Protection Agency.[9] Compared to other flavors, coffee and cinnamon flavor are the most toxic.[237] The four most commonly found flavor additives were vanillin, ethyl maltol, ethyl vanillin and menthol.[224] They are carcinogenic or toxic, which contribute to causing cardiopulmonary diseases and neurodegenerative disorders.[224] An 18-year-old patient reported using a Juul device with mint flavored pods in the days leading to episodes of pneumothorax in January 2019.[238] In sampling multiple e-cigarette delivery systems, a 2019 study found Juul pods were the only product to demonstrate in vitro cytotoxicity from both nicotine and flavor chemical content, in particular ethyl maltol.[238] There is limited information on the effects of inhaling menthol.[165] Many flavoring additives likely cause respiratory effects not typically seen in cigarette smokers.[165] The evidence is sparse to directly associate inhalations of cinnamon with developing or aggravating asthma.[165] Some flavorings could cause lung inflammation.[239] Fruity, sweet, and traditional tobacco flavorings may result in lung toxicity.[47] Flavorings can harm lung cells by producing free radicals and inflammation.[117] Some e-liquids containing cinnamaldehyde stimulate TRPA1, which might induce effects on the lung.[72] In human lung fibroblasts, cinnamon roll flavoring resulted in a noticeable rise in the amount of inflammatory cytokine IL-8.[224] E-liquids contain possibly toxic aldehydes and reactive oxygen species (ROS).[72] Many flavors are known aldehydes, such as anisaldehyde, cinnamaldehyde, and isovaleraldehyde.[72] Saccharides in sweet e-liquid flavors break down and generate furans and aldehydes when vaporized.[240] The consequences of aldehyde-containing flavors on pulmonary surfaces are unknown.[72] A 2012 study found butterscotch flavor was highly toxic with one liquid and two others had a low toxicity.[32] A 2014 in vitro study showed that menthol flavors have a damaging effect on human periodontal ligament fibroblast growth.[221] Methanol had increased the amount of hydrogen peroxide.[224] A 2017 study found a variety of flavoring initiated inflammatory cytokines in lung cell cultures, of which acetoin and maltol were among the most strongest.[239] A 2014 in vitro study demonstrated that e-cigarette use of a "balsamic" flavor with no nicotine can activate the release of proinflammatory cytokine in lung epithelial cells and keratinocytes.[63] Some additives may be added to reduce the irritation on the pharynx.[146] The long-term toxicity is subject to the additives and contaminants in the e-liquid.[78] It is possible that flavors may worsen some of harmful effects in various cell types such as diminished cell viability, escalated rates of apoptosis, escalated DNA strand breaks, alterations in cell morphology and intensified inflammatory mediator production.[228]

Certain flavorings contain diacetyl and acetyl propionyl which give a buttery taste.[79] Some sweet flavors containing diacetyl and acetyl propionyl include butter, chocolate, milk, or toffee.[237] Diacetyl occurs in a variety of e-cigarette flavorings such as caramel, butterscotch, watermelon, pina colada, and strawberry.[239] A 2016 Harvard detected 39 of the 51 flavored e-cigarettes tested contained diacetyl.[241] The American Lung Association recommended in 2016 that the FDA require that diacetyl and other unsafe chemicals be omitted from e-cigarettes.[241] Menthol flavorings could also contain diacetyl.[239] Diacetyl and acetyl propionyl are associated with bronchiolitis obliterans.[79] A 2018 PHE report stated that the e-cigarette flavorings containing diacetyl is not likely to present a considerable risk.[242] A 2015 review recommended for specific regulation of diacetyl and acetyl propionyl in e-liquid, which are safe when ingested but have been associated with respiratory harm when inhaled.[243] Being exposed to diacetyl produces morphological alterations in the liver according to animal studies.[84] Both diacetyl and acetyl-propionyl have been found in concentrations above those recommended by the US National Institute for Occupational Safety and Health.[79] Diacetyl is normally found at lower levels in e-cigarettes than in traditional cigarettes.[79] 2, 3-pentanedione, is a α-diketone that is chemically and structurally similar to diacetyl.[148] Although it has become a popular replacement for diacetyl, acute inhalation exposure to 2, 3-pentanedione has been shown to cause airway epithelial damage similar to diacetyl.[148] Some liquids use butyric acid instead of diacetyl and acetyl propionyl, but it could have negative health effects.[244] Concerns exist that the flavors and additives in e-cigarettes might lead to diseases, including the popcorn lung.[55] The cardiovascular effects, including a vast range of flavorings and fragrances, is unknown.[245] Compared to other flavors, cherry contains a greater amount of benzaldehyde,[237] a main ingredient for a variety of fruit flavors.[239] Because benzaldehyde can irritate the eyes and mucous membranes of the respiratory tracts with workplace exposure, concerns have been expressed regarding the toxicity of flavored e-cigarette vapor.[246] The irritants butyl acetate, diethyl carbonate, benzoic acid, quinoline, bis(2-ethylhexyl) phthalate, and 2,6-dimethyl phenol were present as undeclared ingredients in the e-liquid.[42] The precise ingredients of e-cigarettes are not known.[247] A 2010 study found rimonabant when examining e-liquids.[248] This weight loss drug has been linked to seizures and suicide.[248] The same study also determined e-liquid can contain amino-tadalafil which is a component of Cialis, used for erectile dysfunction.[248] Users are at risk of encountering negative health outcomes from the small possibility of being exposed to pharmacologic compounds in some e-liquids.[248]

The Centers for Disease Control tested in 2015 36 e-cigarette products for 10 flavor compounds commonly used as additives in tobacco products.[148] Measurable levels of eucalyptol and pulegone were found in the menthol-flavored varieties for all manufacturers.[148] Menthol concentrations ranged from 3,700 to 12,000 μg/g in flavored e-liquids, levels similar to those found in the filler of traditional cigarettes.[148] Interestingly, menthol was found at low concentrations in 40% of the tobacco-flavored nonmenthol products tested.[148] Other flavor compounds found were camphor, methyl, salicylate, pulegone, cinnamaldehyde (CAD), and eugenol.[148] Tierney and colleagues in 2016 analyzed 30 e-cigarette products on the U.S. market and found 13 products contained more than 1% flavor chemicals by weight.[148] Among the chemicals identified were aldehydes (e.g., benzaldehyde and vanillin), which are categorized as primary irritants of the respiratory tract.[148] Tierney and colleagues also found that tobacco-flavored e-liquids were derived from confection-flavored chemicals (e.g., bubble gum and cotton candy flavoring) rather than tobacco extract.[148] Various candy and fruit flavor e-liquids that are enticing to youth exhibit in cell culture cytotoxic or mutagenic effects.[138]

Formaldehyde

[edit]

The IARC has categorized formaldehyde as a human carcinogen, and acetaldehyde is categorized as a potential carcinogenic to humans.[226] Formaldehyde induced DNA damage and inhibited DNA repair.[249] Acetaldehyde generated crosslinking of DNA-protein which impede with DNA metabolic functions, including replication, repair, recombination, transcription and chromatin remodeling.[249] Aldehydes may cause harmful health effects; though, in the majority of cases, the amounts inhaled are less than with traditional cigarettes.[226] A 2016 study found that e-liquids without flavoring generated no aldehydes, which indicated that the flavors were causing the creation of aldehydes, according to a 2018 PHE report.[250] Many chemical compounds can inadvertently be produced from e-cigarettes, especially carbonyl compounds like formaldehyde, acetaldehyde, acrolein, and glyoxal by the chemical reaction of the e-liquid when the nichrome wire (heating element) is heated,[226] to high temperatures.[63] These compounds are frequently identified in e-cigarette aerosols.[226] Potentially hazardous carbonyls have been identified in e-cigarette aerosols produced at temperatures above 200 °C.[165] The propylene glycol-containing liquids produced the most amounts of carbonyls in e-cigarette aerosols.[226] The levels of toxic chemicals in the e-cigarette vapor were found to be 1 to 2 orders of magnitude smaller than with cigarette smoke but greater than from a nicotine inhaler.[13] Nearly all e-cigarettes evaluated, toxic and irritation-causing carbonyls were identified.[63] Reports regarding the levels of toxic chemicals were inconsistent.[63] This includes a study showing that the levels of toxicants in e-cigarettes may be higher than with cigarette smoke.[63]

Battery output voltage influences the level of the carbonyl substances in the e-cigarette vapor.[226] Some newer e-cigarette models let users boost the amount of vapor and nicotine provided by modifying the battery output voltage.[226] E-cigarettes that were modified to boost the vapor production are more dangerous to use.[93] High-voltage e-cigarettes could subject users to large amounts of carbonyls.[226] E-cigarettes with higher voltages (5.0 V[77]) can emit carcinogens including formaldehyde at levels comparable to cigarette smoke,[205] while reduced voltages (3.0 V[4]) generate aerosol with levels of formaldehyde and acetaldehyde roughly 13 and 807-fold less than in cigarette smoke.[226] The average amount of formaldehyde in vapor from high-voltage devices is higher than the average amount of formaldehyde released from cigarettes.[251] "Dripping", where the liquid is dripped directly onto the atomizer, can create carbonyls including formaldehyde.[252]

Controversy exists regarding the specific amount of formaldehyde expected to be breathed in by the user.[228] A 2015 PHE report found that normal e-cigarette use generates very low levels of aldehydes.[253] Normal usage of e-cigarettes generates very low levels of formaldehyde,[232] and at normal settings they generate very low levels of formaldehyde.[253] A 2018 PHE report found that at normal usage temperatures, aldehyde in the e-cigarette vapor is at negligible amounts in comparison with smoking.[254] Later-generation and "hotter" e-cigarettes may generate equal or higher levels of formaldehyde compared to smoking.[209] A 2015 study analyzing 10 puffs found that vaping at a high voltage (5.0 V) generates formaldehyde in e-cigarette vapor; they inferred from the finding that the user vaping at high voltage with 3 ml of e-liquid daily would inhale 14.4±3.3 mg of formaldehyde daily in formaldehyde-emitting chemicals.[77] This was estimated to be a lifetime cancer risk of 5 to 15 times greater than compared with long-term smoking.[77] A 2015 study using a third-generation device, very low levels of formaldehyde were produced on lower power, although, when adjusted to a maximum power setting, levels were greater than with cigarette smoke.[232] Running at a higher power (temperature) not only increases nicotine delivery, but also increases the amount of formaldehyde and other aldehydes that are naturally produced by heating up propylene glycol or glycerin and other toxicants produced in the e-cigarette aerosol.[35] A 2015 PHE report found that by applying maximum power and increasing the time the device is used on a puffing machine, e-liquids can thermally degrade and produce high levels of formaldehyde.[253] Users detect the "dry puff" (also known as a "dry hit"[255]) and avoid it, and they concluded that "There is no indication that EC users are exposed to dangerous levels of aldehydes."[256] However, e-cigarette users may learn to overcome the unpleasant taste due to elevated aldehyde formation, when the nicotine craving is high enough.[72]

Nicotine

[edit]
Возможные побочные эффекты никотина включают повышенную склонность к свертыванию крови, атеросклероз, расширение аорты, бронхоспазм, мышечный тремор и боль, желудочно-кишечную тошноту, сухость во рту, диспепсию, диарею, изжогу, язвенную болезнь, рак, головокружение, головную боль, нарушения сна, аномальные сновидения. , раздражительность, головокружение, ограничение крови, увеличение или уменьшение частоты сердечных сокращений, повышение артериального давления, тахикардия, увеличение (или уменьшение) аритмий, сужение коронарной артерии, ишемическая болезнь сердца, высокий уровень инсулина, резистентность к инсулину и риски для ребенка в более позднем возрасте во время беременности включают диабет 2 типа, ожирение, гипертонию, нейроповеденческие дефекты, дыхательную дисфункцию и бесплодие.
Possible side effects of nicotine[257]
Сравнительный анализ риска наркотиков, проведенный в 2015 году, показал, что значения предела воздействия никотина (MOE) находятся в более низком диапазоне риска, чем кокаин, героин и алкоголь, тогда как значения MOE находятся в более высоком диапазоне риска, чем МДМА, метамфетамин и метадон. Выше показано значение MOE для ежедневного употребления наркотиков, полученное в результате анализа.
A 2015 comparative risk analysis of drugs found the nicotine's margin of exposure (MOE) values were in a lower risk range than cocaine, heroin, and alcohol, whereas its MOE values was in a higher risk range than MDMA, methamphetamine, and methadone.[258] Shown above is the MOE for daily drug use from the analysis.[258]

Nicotine is regarded as a potentially lethal poison.[11] There are safety issues with the nicotine exposure from e-cigarettes, which may cause addiction and other adverse effects.[4] Concerns exist that vaping can be harmful by exposing users to toxic levels of nicotine.[11] Pregnant women, breastfeeding mothers, and the elderly are more sensitive to nicotine than other individuals.[75] Nicotine is proben to be carcirogen in mice and has been linked to cancer in humans.[259] At sufficiently high doses, nicotine may result in nausea, vomiting, diarrhea, salivation, bradyarrhythmia, and possibly seizures and hypoventilation.[170] High doses can induce deleterious effects on the growth of osteoblasts.[260] Higher-doses leads to loss of nicotinic receptor specificity and induces cholinergic toxicity.[174] The highest-doses can lead to coma.[174] However, at the low amount of nicotine provided by e-cigarettes fatal overdose from use is unlikely; in contrast, the potent amount of nicotine in e-cigarettes liquids may be toxic if it is accidentally ingested or absorbed via the skin.[11] The health effects of nicotine in infants and children are unclear.[170]

E-cigarettes provide nicotine to the blood quicker than nicotine inhalers.[19] The levels were above that of nicotine replacement product users.[11] E-cigarettes seem to have a pharmacokinetic nicotine profile closer to nicotine replacement products than with traditional cigarettes.[261] How efficiently different e-cigarettes give nicotine is unclear.[11] Serum cotinine levels are comparable to that of traditional cigarettes,[136] but are inharmonious and rely upon the user and the device.[131] Blood nicotine levels raised more gradually and took more time to get to peak concentration with e-cigarettes than with traditional cigarettes.[262] Vaping was found to have comparable levels of nicotine urinary metabolites to those who were tobacco and smokeless tobacco product users.[47] Though, the oxidative nicotine metabolites were less in those who were vaping.[47] Evidence indicates that some vaping products may deliver the same amount of nicotine as traditional cigarettes.[45] There is fair evidence that chance and degree of dependence are less for e-cigarettes than traditional cigarettes, according to a 2018 National Academies of Sciences, Engineering, and Medicine report.[263] It not clear the level of addictiveness of e-cigarettes, compared with traditional cigarettes, according to a 2018 PHE report.[264] The report also stated "nicotine addictiveness depends on a number of factors including presence of other chemicals, speed of delivery, pH, rate of absorption, the dose, and other aspects of the nicotine delivery system, environment and behaviour."[265] Users vaping without using nicotine exhibited symptoms of dependence, according to a 2015 study.[266] E-cigarette packages and advertisements require health warnings under US law, stating "WARNING: This product contains nicotine. Nicotine is an addictive chemical."[45][267][268]

Aerosol composition

[edit]

The chemical composition of the e-cigarette aerosol varies across and within manufacturers.[4] Limited data exists regarding their chemistry.[4] The aerosol of e-cigarettes is generated when the e-liquid reaches a temperature of roughly 100–250 °C within a chamber, which is thought to cause pyrolysis of the e-liquid and could also lead to decomposition of other liquid ingredients.[72] The vapor usually contains propylene glycol, glycerin, nicotine, flavors, aroma transporters, and other substances.[10] The levels of nicotine, TSNAs, aldehydes, metals, volatile organic compounds (VOCs), flavors, and tobacco alkaloids in e-cigarette vapors vary greatly.[4] The yield of chemicals found in the e-cigarette vapor varies depending on, several factors, including the e-liquid contents, puffing rate, and the battery voltage.[117]

E-cigarettes consist of fine and ultrafine particles of particulate matter,[13] in the form of an aerosol.[209][4] The aerosol (mist[78]) produced by an e-cigarette is commonly but inaccurately called vapor.[4] In physics, a vapor is a substance in the gas phase whereas an aerosol is a suspension of tiny particles of liquid, solid or both within a gas.[4] The word "vaping" is not technically accurate when applied to e-cigarettes.[133] The aerosol is made-up of liquid sub-micron particles of condensed vapor; thus, the users of these devices are rather "aerosolizing."[133] This aerosol that is produces looks like cigarette smoke to some extent.[128] After a puff, inhalation of the aerosol travels from the device into the mouth and lungs.[4] The composition of e-liquids varies widely due to the extensive range of nicotine levels and flavoring additives used in these products, which result in a hugely great number of different chemical vapor combinations potentially breathed in by the user.[165]

The particles produced from vaping are comparable in particle-size distribution and number of particles to cigarette smoke, with the majority of them in the ultrafine range.[13] Some e-cigarettes released more particles than cigarette smoke.[13] A 2014 review found that fine particles can be chemically intricate and not uniform, and what a particle is made of, the exact harmful elements, and the importance of the size of the particle is mostly unknown.[13] They found that because these things are uncertain, it is not clear whether the ultrafine particles in e-cigarette vapor have health effects similar to those produced by traditional cigarettes.[13] A 2014 WHO report found e-cigarettes release a lower concentration of particles than traditional cigarettes.[3]

Metals

[edit]

There is limited evidence on the long-term exposure of metals.[9] Exposure to the levels and kinds of metals found in the aerosol relies upon the material and other manufacturing designs of the heating element.[32] E-cigarettes contain some contamination with small amounts of metals in the emissions but it is not likely that these amounts would cause a serious risk to the health of the user.[9] According to a 2018 PHE report, metals emissions no matter how small, are not needed.[235] They further stated, "EC [e-cigarettes] that generate minimal metal emissions should become an industry standard."[222] The device itself could contribute to the toxicity from the small amounts of silicate and heavy metals found in the liquid and vapor,[252] because they have metal parts that come in contact with the e-liquid.[9] Low levels of possibly harmful chromium, lead, and nickel metals have been found in the emissions.[32] Chromium and nickel nanoparticles have also been found.[13] Copper nanoparticles can induce mitochondrial and DNA injury in lung fibroblasts.[269] DNA repair can be impeded by titanium dioxide nanoparticles from the e-cigarette vapor.[270] This was demonstrated that the titanium dioxide nanoparticles induced single-strand breaks and produced oxidative stress in the DNA of A549 cells.[270] The risk of inhaling nanoparticles is an area of concern.[175] The toxicity of nanoparticles is unknown.[271] Metals including nickel, cadmium, lead and silicate can found in the e-cigarette vapors, and are thought to be carcinogenic, nephrotoxic, neurotoxic, and hemotoxic.[84] Heavy metals are correlated with serious health issues.[26] Inhaling lead can induce serious neurologic injury, notably to the growing brains of children.[26]

Metals may adversely affect the nervous system.[272] Metals found in the e-cigarette vapor may induce cell damage and initiate inflammatory cytokine such as in human lung fibroblasts.[239] A 2017 review found "E-cigarette aerosols and copper nanoparticles induced mitochondrial ROS production, mitochondrial stress (reduced stability of OxPhos electron transport chain (ETC) complex IV subunit) and DNA fragmentation in lung fibroblasts."[224] A 2013 review found metallic and nanoparticles are associated with respiratory distress and disease.[141] A 2014 review found considerable amounts of tin, metals, and silicate particles that came from various components of the e-cigarette were released into the aerosol, which result in exposure that could be higher than with cigarette smoke.[63] A 2013 study found metal particles in the aerosol were at levels 10-50 times less than permitted in inhalation medicines.[10] A 2014 review suggested that there is no evidence of contamination of the aerosol with metals that justifies a health concern.[161] Cadmium that have been found in the e-cigarette vapor is linked to low sperm density.[231]

It is thought that electronic cigarette use may be associated with increased levels of metal and adverse toxicity effects of human health. However, the effects of metals in electronic cigarette devices were examined in a small number of studies as of 2023, therefore, this is not sufficient to create a firm conclusion. Additionally, past tobacco use history among different forms may affect metal levels in these studies due to long half-life for some metals.[273]

First-generation devices

[edit]

E-cigarettes resembling cigarettes typically produce much less blood nicotine levels.[227] When compared to traditional cigarettes older devices usually delivered low amounts of nicotine.[11] E-cigarette use can be associated with a substantial dispersion of nicotine, thus generating a plasma nicotine concentration which can be comparable to that of traditional cigarettes.[155] This is due to the minute nicotine particles in the e-cigarette vapor, which permit quick delivery into the bloodstream.[155] The nicotine delivered from e-cigarettes enters the body slower than traditional cigarettes.[157] Studies suggest that inexperienced users obtain moderate amounts of nicotine from e-cigarettes.[274] Concerns were raised over inconsistent amounts of nicotine delivered when drawing on the device.[275]

Newly developed devices

[edit]

Tank or adjustable e-cigarettes can raise nicotine levels as high as traditional cigarettes.[227] Later-generation e-cigarettes give nicotine more effectively than first-generation e-cigarettes.[71] Later-generation models with concentrated nicotine liquids may deliver nicotine at levels similar to traditional cigarettes.[11] Some e-cigarette tank devices with stronger batteries heat solutions to greater temperatures, which may raise levels of nicotine in the blood similar to those of traditional cigarettes.[32] Research suggests that experienced e-cigarettes users are able to get as much nicotine from e-cigarettes as traditional cigarettes.[11] Later-generation e-cigarettes containing sufficient nicotine elevate heart rate comparable to traditional cigarettes.[245] Later-generation devices delivery 35% to 72% more nicotine than compared with first‐generation devices.[87] Second-generation e-cigarettes raised the heart rate and blood pressure similar to traditional cigarettes.[276] As there are design changes, later-generation devices may provide nicotine similar to traditional cigarettes with a highly concentrated amount potential straight to the brain.[145] Such devices may largely reshape the effects on cardiac safety, misuse, and addiction.[145] There is not much research on fourth-generation devices.[34]

Concerns

[edit]
Изображение человеческого мозга. Усиливающее действие наркотических средств, таких как никотин, связано с его способностью возбуждать мезолимбическую и дофаминергическую системы. Как электронные сигареты влияют на мозг? Никотин в жидкостях для электронных сигарет легко всасывается в кровоток, когда человек курит электронную сигарету. Попадая в кровь, никотин стимулирует надпочечники к выделению гормона адреналина (адреналина). Адреналин стимулирует центральную нервную систему и повышает кровяное давление, дыхание и частоту сердечных сокращений. Как и большинство веществ, вызывающих зависимость, никотин повышает уровень химического вещества в мозге, называемого дофамином, который влияет на части мозга, контролирующие вознаграждение (удовольствие от естественного поведения, такого как еда). Эти чувства побуждают некоторых людей употреблять никотин снова и снова, несмотря на возможный риск для их здоровья и благополучия.
The reinforcing effects of drugs of abuse, such as nicotine, is associated with its ability to excite the mesolimbic and dopaminergic systems.[277]
How do e-cigarettes affect the brain?[278] The nicotine in e-liquids readily absorbs into the bloodstream when a person uses an e-cigarette.[278] Upon entering the blood, nicotine stimulates the adrenal glands to release the hormone epinephrine (adrenaline).[278] Epinephrine stimulates the central nervous system and increases blood pressure, breathing, and heart rate.[278] As with most addictive substances, nicotine increases levels of a chemical messenger in the brain called dopamine, which affects parts of the brain that control reward (pleasure from natural behaviors such as eating).[278] These feelings motivate some people to use nicotine again and again, despite possible risks to their health and well-being.[278]

The health effects of long-term nicotine use is unknown.[142] It may be decades before the long-term health effects of nicotine vapor inhalation is known.[279] It is not recommended for non-smokers.[9] Public health authorities do not recommend nicotine use for non-smokers.[280] The pureness of the nicotine differs by grade and producer.[281] The impurities associated with nicotine are not as toxic as nicotine.[281] The health effects of vaping tobacco alkaloids that stem from nicotine impurities in e-liquids is not known.[281] Nicotine affects practically every cell in the body.[75] The complex effects of nicotine are not entirely understood.[201] It poses several health risks.[282] Short-term nicotine use excites the autonomic ganglia nerves and autonomic nerves, but chronic use seems to induce negative effects on endothelial cells.[283] Nicotine may have a profound impact on sleep.[284] The effects on sleep vary after being intoxicated, during withdrawal, and from long-term use.[284] Nicotine may result in arousal and wakefulness, mainly via incitement in the basal forebrain.[285] Nicotine withdrawal, after abstaining from nicotine use in non-smokers, was linked with longer overall length of sleep and REM rebound.[284] A 2016 review states that "Although smokers say they smoke to control stress, studies show a significant increase in cortisol concentrations in daily smokers compared with occasional smokers or nonsmokers. These findings suggest that, despite the subjective effects, smoking may actually worsen the negative emotional states. The effects of nicotine on the sleep-wake cycle through nicotine receptors may have a functional significance. Nicotine receptor stimulation promotes wake time and reduces both total sleep time and rapid eye movement sleep."[286]

Nicotine can weaken antibacterial defenses and modify macrophage activation.[147] Nicotine can cause tremors,[117] high blood pressure, abnormal heart rhythms,[156] and lower coronary blood flow.[245] Nicotine constricts blood vessels.[194] This includes coronary blood vessels and those in the skin.[287] However, blood vessels in the skeletal muscle dilate as a result of nicotine.[287] It can also cause nausea, sweating, and diarrhea.[145] In reaction to nitric oxide, it hinders endothelial-dependent widening of blood vessels.[201] It is associated with stroke, peripheral vascular disease, delayed wound healing, peptic ulcer disease, and esophageal reflux.[251] Vapers that get a higher amount of blood nicotine are probably correlated with increased heart rates.[147] Acute administration of nicotine causes a variety of well-characterized, dose- and route-dependent effects in adults, including cardiovascular effects, such as greater cardiac output, leading to an increase in myocardial oxygen demand.[148] Nicotine is correlated with lung inflammation in adults, which may be as a result of it chemotactic effects.[34] Nicotine may have adverse effects on lipids,[288] cause insulin resistance,[32] and may cause pro-inflammatory effects that could impact beta cell function.[289] Nicotine lowers activity of free radical scavenging enzymes, resulting in more production of hydroxyl free radicals.[289] Nicotine impairs glucose homeostasis, indicating a major role in the development of diabetes mellitus type 2.[289] Osseointegration is a pertinent part of the survival of implants.[290] Nicotine considerably impedes the regenerative capability of mesenchymal stem cells.[291] This includes impeding their proliferation, migration, and differentiation.[291] Nicotine has been correlated with vasoconstriction and a weakened ability to heal at the cellular level.[290] Thus, it apparently compromises implant osseointegration.[290] Nicotine lowers estrogen levels and has been associated with early menopause in women.[156] Nicotine is negatively associated with total sperm motility.[231] Nicotine causes dysfunction of NO synthesis.[282] This may result in inability to get penile erections and erectile dysfunction.[282]

A 2016 review found "Evidence from experimental animal models clearly demonstrate nicotine's ability to enhance existing tissue injury and diseases such as cancer, cardiovascular disease, stroke, pancreatitis, peptic ulcer, renal injury and developmental (e.g. pulmonary, reproductive and central nervous system) abnormalities."[292] The consequence of nicotine use in autoimmunity has been conflicting.[293] Nicotine could have cancer-promoting properties, therefore long-term use may not be harmless.[109] Nicotine may result in neuroplasticity variations in the brain.[173] Nicotine has been demonstrated to alter the amounts of brain-derived neurotrophic factor in humans.[294] Nicotine could make cancer therapies less effective.[110] Based on in vitro and in vivo effects of nicotine, patients should be advised not to use nicotine products during cancer treatment unless it is temporarily needed to stop tobacco smoking.[207] Nicotine can suppress appetite.[295] Nicotine users will probably gain weight after using less nicotine.[296] A long-term risk from vaping a base containing nicotine is nicotine dependence.[138]

Youth concerns

[edit]

Children are more sensitive to nicotine than adults.[75] The use of products containing nicotine in any form among youth, including in e-cigarettes, is unsafe.[148] Nicotine has more significant and durable damaging effects on adolescent brains compared to adult brains, the former developing more harmful effects.[148] Animal research offers strong evidence that the limbic system is particularly vulnerable to the long lasting effects of nicotine.[297] In youth, nicotine may result in cognitive impairment[297] as well as the chance of nicotine addiction for life.[156] The adolescent's developing brain is especially sensitive to the harmful effects of nicotine.[298] A short period of regular or occasional nicotine exposure in adolescence exerts long-term neurobehavioral damage.[298] Risks of exposing the developing brain to nicotine include mood disorders and permanent lowering of impulse control.[91] The rise in vaping is of great concern because the parts encompassing in greater cognitive activities including the prefrontal cortex of the brain continues to develop into the 20s[170] Nicotine exposure during brain development may hamper growth of neurons and brain circuits, effecting brain architecture, chemistry, and neurobehavioral activity.[170]

Food and Drug Administration Commissioner Scott Gottlieb announced on 28 July 2017 a comprehensive regulatory plan for tobacco and nicotine regulation that will serve as a multi-year roadmap to better protect youth and significantly reduce tobacco-related disease and death, including pursuing lowering nicotine in regular cigarettes to a minimally or non-addictive level.[171]

Nicotine changes the way synapses are formed, which can harm the parts of the brain that control attention and learning.[91] Preclinical studies indicate that teens being exposed to nicotine interferes with the structural development of the brain, inducing lasting alterations in the brain's neural circuits.[179] Each e-cigarette brand differs in the exact amount of ingredients and nicotine in each product.[179] Therefore, little is known regarding the health consequences of each brand to the growing brains of youth.[179] In August 2014, the American Heart Association noted that "e-cigarettes could fuel and promote nicotine addiction, especially in children."[32] Whether there are subgroups of adolescents who are at greater risk of developing a nicotine dependence from vaping is not known.[138] A 2014 policy statement by the UK's Faculty of Public Health has stated, "A key concern for everyone in public health is that children and young people are being targeted by mass advertising of e-cigarettes. There is a danger that e-cigarettes will lead to young people and non-smokers becoming addicted to nicotine and smoking. Evidence from the US backs up this concern."[299] Long-term studies on the safety of nicotine-only exposure (e.g., as with using e-cigarettes rather than smoking traditional cigarettes) among youth have not been conducted.[148]

In 2015 the psychological and behavioral effects of e-cigarettes were studied using whole-body exposure to e-cigarette vapor, followed by a series of biochemical and behavioral studies.[213] The results showed that nicotine-containing e-cigarette vapor induces addiction-related neurochemical, physiological and behavioral changes.[213] A 2015 study on the offspring of the pregnant mice, which were exposed to nicotine-containing e-cigarette liquid, showed significant behavioral alterations.[213] This indicated that exposure to e-cigarette components in a susceptible time period of brain development could induce persistent behavioral changes.[213] As indicated in the limited research from animal studies, there is the potential for induced changes in neurocognitive growth among children who have been subjected to e-cigarette vapors consisting of nicotine.[300] The FDA stated in 2019 that some people who use e-cigarettes have experienced seizures, with most reports involving youth or young adult users.[123]

Comparison of levels of toxicants in e-cigarette aerosol

[edit]
Amounts of toxicants in e-cigarette aerosol compared with nicotine inhaler and cigarette smoke[77]
ToxicantRange of content in nicotine inhaler mist (15 puffs∗)Content in aerosol from 12 e-cigarettes (15 puffs∗)Content in traditional cigarette micrograms (μg) in smoke from one cigarette
Formaldehyde (μg)0.20.2-5.611.6-52
Acetaldehyde (μg)0.110.11-1.3652-140
Acrolein (μg)ND0.07-4.192.4-62
o-Methylbenzaldehyde (μg)0.070.13-0.71
Toluene (μg)NDND-0.638.3-70
p- and m-Xylene (μg)NDND-0.2
NNN (ng)NDND-0.000430.0005-0.19
Cadmium (ng)0.003ND-0.022
Nickel (ng)0.0190.011-0.029
Lead (ng)0.0040.003-0.057

Abbreviations: μg, microgram; ng, nanogram; ND, not detected.[77]
∗Fifteen puffs were chosen to estimate the nicotine delivery of one traditional cigarette.[77]

Respiratory Effects

[edit]

The risks to the lungs are not fully understood,[72] and concern exists regarding the negative effects on lung function.[301] The long-term lung function effects of vaping is unknown.[131] There is limited evidence on the long-term health effects to the lungs.[209] The long-term effect from vaping a base containing nicotine on lung tissue is unknown.[302] Limited evidence suggests that e-cigarettes produce less short-term effects on lung function than with traditional cigarettes.[131] Many ingredients used in e-liquids have not been examined in the lung.[72] The effects of e-cigarette use in respect to asthma and other respiratory diseases are unknown.[10] It is not clear whether long-term inhalation of e-cigarette vapor will make asthma better or worse.[165] A 2015 review found e-cigarettes may induce acute lung disease.[209]

Exposure to inhaled nicotine-containing e-cigarette fluids triggered effects normally associated with the development of a chronic obstructive lung disease-like tissue damage in a nicotine-dependent manner.[213] Preclinical research indicate that vaping escalates the virulence of drug resistant microorganisms and diminishes the capacity of lung cells to eliminate bacteria.[303] E-cigarettes have been correlated with pleural effusions.[269] A 2015 study found that e-cigarette vapors can induce oxidative stress in lung endothelial cells.[73] Constant lung inflammation as a result of the e-cigarette vapor could result in lung pathogenesis and induce serious diseases, including chronic obstructive pulmonary disease and fibrosis.[115] There is strong evidence that e-cigarette vapors can result in acute endothelial cell injury, but the long-term effects regarding this matter on being exposed over a prolonged period of time to e-cigarette vapor is uncertain.[304] A 2017 review found "Exposure to nicotine that was specifically generated by the use of e-cigarettes, was shown to promote oxidative stress and impairment of autophagy, which in turn serves as a potential mechanism leading to development of chronic obstructive pulmonary disease."[224] A 2014 case report observed the correlation between sub-acute bronchiolitis and vaping.[209] After quitting vaping the symptoms improved.[209] Vaping causes bronchospasm.[87] Adolescents who vaped had a higher frequency of chronic bronchitis symptoms.[239]

The long-term effects regarding respiratory flow resistance are unknown.[85] The available evidence indicates that e-cigarettes may result in respiratory effects that are like as well as unlike that of traditional cigarettes.[165] E-cigarettes reduce lung function, but to a much lower extent than with traditional cigarettes.[305] E-cigarettes could harm the respiratory system.[78] Vaping induces irritation of the upper and lower respiratory system.[251] The immediate effects of e-cigarettes after 5 minutes of use on pulmonary function resulted in considerable increases in resistance to lung airflow.[71] A 2013 review found an instant increase in airway resistance after using a single e-cigarette.[78] Higher levels of exhaled nitric oxide were found among test subjects in a 2014 study who vaped with a base of nicotine which was associated with lung inflammation.[149] Any reported harmful effects to cardiovascular and respiratory functions after short-term use of e-cigarettes were appreciably milder in comparison to cigarette smoke.[9] When used in the short-term, an e-cigarette resulted in a rise of respiratory resistance comparatively to traditional cigarettes.[85] E-cigarette use could result in respiratory diseases among youth.[306] Evidence from animal studies indicate that children or adolescents exposed to second-hand vapor containing nicotine may impede their lung development.[307] Adolescents with asthma who vape could have greater odds of having a higher number of respiratory symptoms and aggravations in contrast to their peers who do not vape.[308] Adolescents and children with other respiratory ailments who vape may be at greater chance for aggravating of respiratory symptoms.[309] A 2018 PHE report found "There have been some studies with adolescents suggesting respiratory symptoms among EC experimenters. However, small scale or uncontrolled switching studies from smoking to vaping have demonstrated some respiratory improvements."[310] A 2017 review found "among a population of 11th-grade and 12th-grade students in California, e-cigarette use was associated with twice the risk of respiratory symptoms, and the risk increased with more frequent e-cigarette use."[144]

Comparable to a traditional cigarette, e-cigarette particles are tiny enough to enter the alveoli, enabling nicotine absorption.[71] These particles are also tiny enough to go deep in the lungs and enter into the systemic circulation.[13] Research indicates that e‐cigarette vapor containing particulate matter with a diameter of 2.5 μm, just from one puff, enters the systemic circulation via the cardiopulmonary system, leading to a large amount being deposited in the respiratory tract.[87] Local pulmonary toxicity may occur because metal nanoparticles can deposit in the lung's alveolar sacs.[13] E-cigarettes companies state that the particulates produced by an e-cigarette are too tiny to be deposited in the alveoli.[19] Tinier particles deposit more nicotine in the alveoli.[147] Different devices generate different particle sizes and cause different depositions in the respiratory tract, even from the same nicotine liquid.[205] The aerosol production of e-cigarettes during vaping decreases, which requires a more forceful suction to create a similar volume of aerosol.[40] A more forceful suction could affect the deposition of substances into the lungs.[40] Reports in the literature have shown respiratory and cardiovascular effects by these smaller size particles, suggesting a possible health concern.[164] Vaping is potentially harmful, especially to the critically ill, such as people with oncologic, lung, or cardiac diseases.[251] A 2019 case study of hard-metal pneumoconiosis was published in the European Respiratory Journal.[184] Researchers tested the patient's e-cigarette, which was used with cannabis.[184] Cobalt was found in the vapor, including other toxic metals-nickel, aluminum, manganese, lead, and chromium.[184] Metal-induced toxicity in the lung can result in long-term, if not, permanent scarring of the lungs.[184]

As with cardiovascular disease, evidence consistently indicates that exposure to e-cigarette aerosol has adverse effects on lungs and pulmonary function.[35] Repeated exposure to acrolein, which is produced by heating the propylene glycol and glycerin in e-liquids, causes chronic pulmonary inflammation, reduction of host defense, neutrophil inflammation, mucus hypersecretion, and protease-mediated lung tissue damage, which are linked to the development of chronic obstructive pulmonary disease.[35] E-cigarette aerosol also exposes users to highly oxidizing free radicals.[35] The chemical characteristics of the short-lived free radicals and long-lived free radicals produced from e-cigarettes is unclear.[194] Animal studies have also shown that e-cigarettes increase pulmonary inflammation and oxidative stress while inhibiting the immune system.[35]

Consistent with these experimental results, people who used e-cigarettes experienced decreased expression of immune-related genes in their nasal cavities, with more genes suppressed than among cigarette smokers, indicating immune suppression in the nasal mucosa.[35] E-cigarette use upregulates expression of platelet-activating factor receptor (PAFR) in users' nasal epithelial cells; PAFR is an important molecule involved in the ability of S.pneumoniae, the leading cause of bacterial pneumonia, to attach to cells it infects (adherence).[35] In light of the immunosuppressive effects observed in nasal mucosa, there is concern that e-cigarette use will predispose users toward more severe respiratory infections, as has been demonstrated in mouse studies.[35]

Given these effects, it is not surprising that e-cigarette use is associated with a doubling of the risk of symptoms of chronic bronchitis among US high school juniors and seniors with higher risk associated with higher use; these risks persisted among former users.[35] Similarly, current e-cigarette use was associated with an increased diagnosis of asthma among Korean high school students among current (e-cigarette users who were never cigarette smokers).[35] E-cigarette users were also more likely to have had days absent from school due to severe asthma symptoms.[35]

Vaping is reportedly tied to a range of lung injuries which include hypersensitivity pneumonitis (HP), diffuse alveolar hemorrhage (DAH), acute eosinophilic pneumonia (AEP), diffuse alveolar damage, organizing pneumonia (OP), lipoid pneumonia, and giant cell interstitial pneumonia (GIP).[311]

2019–2020 vaping lung injury outbreak

[edit]
Некоторые из продуктов для вейпинга, в том числе изображенные здесь, содержали чрезвычайно большое количество ацетата витамина Е.
2019 CDC map of reported vaping-related lung illness cases.
Chart from the CDC in 2020 showing the number of EVALI cases by week of hospital admission from February 2019 - January 2020.[312]

Since 2019, an ongoing outbreak of severe vaping-associated lung illness (EVALI) has affected certain users of vaping products in the United States.[notes 1][316] Cases involved in the outbreak of lung illness were first identified in Illinois and Wisconsin in April 2019.[317] Similar cases of vaping-associated lung illness were reported in the UK and Japan before the outbreak occurred.[318] As of February 18, 2020, a total of 2,807 hospitalized cases have been reported to the Centers for Disease Control and Prevention (CDC) from all 50 states, the District of Columbia, and two US territories (Puerto Rico and US Virgin Islands).[316] 68 deaths have been confirmed in 29 states and the District of Columbia in the US as of February 18, 2020.[316] Based on reports from several states, symptoms typically develop over a period of days but sometimes can manifest over several weeks.[313] The outbreak mainly affected young people, which is the group with the greatest prevalence of cannabis use in the US.[319] The ubiquitous use of e-cigarettes including products that enable THC use likely contributed to the outbreak.[319]

The diagnosis of EVALI is a diagnosis of exclusion as the symptoms are diffuse and mostly non-specific.[320] Confirmed cases have the following features as outlined by the CDC: 1) use of e-cigarettes in the 90 days prior to symptom onset; 2) pulmonary infiltrates on chest CT scans; 3) absence of pulmonary infection; 4) no other possible alternative diagnoses. [321]

Treatment for EVALI varies depending on each individual case.[322] Around 95% of patients with EVALI require hospitalization.[323] Pharmacological management includes antibiotics and potentially antivirals as well as corticosteroids.[322] Many hospitalized patients have also required supplemental oxygen and ventilation therapy. [323] Most EVALI cases are resolved when the patient quits vaping. [323]

On September 6, 2019, Dr. Dana Meaney-Delman, serving as the incident manager of the Centers for Disease Control and Prevention's (CDC) response to this outbreak, said that "Based on the clinical and laboratory evidence to date, we believe that a chemical exposure is likely associated with these illnesses."[324] Of the 2,506 reported cases, information is available in the three months prior to symptom onset for 1,782 of them as of December 3, 2019.[316] 80% reported THC use, 35% reported exclusive THC use, about 54% reported using nicotine-containing products, and 13% reported exclusive use of nicotine-containing products.[316] Many of the samples tested by the states or by the US Food and Drug Administration (US FDA) as part of the 2019 investigation have been identified as vaping products containing tetrahydrocannabinol (or THC, a psychoactive component of the cannabis plant).[325] Most of those samples with THC tested also contained significant amounts of vitamin E acetate.[325] A case-control study found vitamin E acetate in the brochoalveolar lavage fluid of 94% of 51 EVALI patients and in none in 99 healthy controls in the comparator group.[326] The CDC reported that their findings suggest vaping products containing THC are linked to most of the cases and play a major role in the outbreak.[316] The CDC stated that the chemical vitamin E acetate is a very strong culprit of concern in the lung illnesses related to THC-based vaping products, but did not rule out other chemicals as possible causes.[notes 2][327]

Thickening agents were used to dilute vape oils.[328] There has been an increase in attention to companies that sell diluent products that are made with vitamin E acetate.[328] Previously, vitamin E was used in low concentrations, or lower than 20% of the formula in vape cartridges.[328] As a result of a limited availability of cannabis in California as well as high demand, illicit sellers had used about 50% or higher of diluent thickeners in their formulas to bulk up tiny potency vape cartridges.[328] In September 2019, New York Governor Andrew Cuomo instructed the state health department to issue subpoenas against three sellers of thickening agents used in illicit vaping products.[329]

The e-cigarette industry is placing the blame on illicit vaping liquids for the lung injuries.[330] Juul Labs stated that some news reports state that several cases of lung illness are associated with vaping THC, found in cannabis, "a Schedule 1, controlled substance that we do not sell."[331] The CDC recommends that the public should consider not using any vaping products during their investigation, particularly those containing THC from informal sources like friends, or family, or in-person or online dealers as of November 20, 2019.[316] The US FDA considers it prudent to avoid inhaling vitamin E acetate.[325] On September 6, 2019, the US FDA stated that because consumers cannot be sure whether any THC vaping products may contain vitamin E acetate, consumers are urged to avoid buying vaping products on the street, and to refrain from using THC oil or modifying/adding any substances to products purchased in stores.[325]

EVALI cases have declined since September 2019, which may be attributed to an increase in public awareness concerning the safety of e-cigarette products and the removal of vitamin E acetate from many of these products. [312] However, there is still a lack of regulation concerning the use of customizable e-cigarette products which could still contribute to future outbreaks.[332] Stricter guidelines concerning additives used in e-cigarettes as well as further toxicological research into the chemicals released by e-cigarettes may be useful strategies to help combat future EVALI cases. [320]

Cardiovascular Effects

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There is accumulating evidence on the long-term cardiovascular effects of electronic cigarette use. A 2023 systematic review and meta-analysis finds e-cigarettes cause a significant, potentially harmful effect on many cardiovascular parameters.[333] A 2024 review found the cardiovascular effects of e-cigarettes may result from oxidative stress, inflammation, endothelial dysfunction, atherosclerosis, hemodynamic effects, and platelet function.[334]. Although limited, there is supportive evidence that e-cigarettes adversely impacts endothelial function and arterial hardening.[335] Most of the cardiovascular adverse effects of vaping are consistent with those of nicotine containing e-cigarettes.[194] Vaping could also bring about some adverse cardiovascular effects to users, especially those who already have cardiovascular disease.[194] The effects of aldehydes, particulates, and flavorings used in vaping devices on cardiovascular health is not clear with contrasting studies.[194] Low amounts of aldehydes can still be a health concern, particularly among individuals with cardiovascular disease.[87] E-cigarettes reduce cardiac muscle function and increase inflammation, but these changes were only substantial with traditional cigarettes.[305] The small particles generated from e-cigarette use have the ability to get through airways and enter circulation, which pose a potential risk to cardiovascular systems.[87] The minute nicotine particles in the e-cigarette vapor could increase the risk of cardiac arrhythmias and hypertension which may put some users, particularly those with atherosclerosis or other cardiovascular risk factors, at significant risk of acute coronary syndrome.[155]

There are many compounds in the e-cigarette vapor that have an impact on the onset and advancement of atherosclerosis.[336] Some case reports documented the possible cardiovascular adverse effects from using e-cigarettes, the majority associated was with improper use.[155] Even though e-cigarettes are anticipated to produce fewer harmful substances than traditional cigarettes, limited evidence recognizes they comparatively have a lowered raised cardiovascular risk.[155]

Preliminary studies have shown that using a nicotine containing e-cigarette for just five minutes causes similar lung irritation, inflammation, and effect on blood vessels as smoking a traditional cigarette, which may increase the risk of a heart attack.[337] E-cigarette use leads to sympathomimetic effects because of nicotine intake.[338] It is argued that there could be a risk for harmful effects, including tachycardia-induced cardiomyopathy.[338] E-cigarettes containing nicotine may have a lower cardiovascular effect than traditional cigarettes containing nicotine.[245] Research on the consequences of vaping on blood pressure is limited.[339] Short-term physiological effects include increases in blood pressure and heart rate.[209] The increased blood pressure and heart rate among smokers who vaped was lower than with cigarette smoking.[87] A 2016 study found vaping increases aortic stiffness in people who did not have cardiovascular risk factors, an effect that was lower than with cigarette smoking.[194] Habitual vaping was associated with oxidative stress and a shift towards cardiac sympathetic activity, which are both associated with a risk of developing cardiovascular disease.[224] Research indicates a relationship between exposure to particulate matter with a diameter of 2.5 μm and the chance of developing cardiovascular disease.[87]

Although the specific role of nicotine in cardiovascular disease remains debated, nicotine is not the only biologically active component in e-cigarette aerosol.[35] E-cigarettes work by creating an aerosol of ultrafine particles to carry nicotine deep into the lungs.[35] These particles are as small as—and sometimes smaller than—those in traditional cigarettes.[35] These ultra fine particles are themselves biologically active, trigger inflammatory processes, and are directly implicated in causing cardiovascular disease and acute cardiovascular events.[35] The dose-response effect for exposure to particles is nonlinear, with substantial increases in cardiovascular risk with even low levels of exposure to ultrafine particles.[35] For example, exposure to second-hand cigarette smoke has nearly as large an effect on many risk factors for cardiovascular disease and the risk of acute myocardial infarction as does being an active smoker.[35] Like traditional cigarette smokers, e-cigarette users experience increased oxidative stress and increases in the release of inflammatory mediators.[35] E-cigarette aerosol also induces platelet activation, aggregation, and adhesion.[35] All these changes are associated with an increased risk of cardiovascular disease.[35] These physiological changes are manifest in rapid deterioration of vascular function following use of e-cigarettes.[35] E-cigarette and traditional cigarette smoking in healthy individuals with no known cardiovascular disease exhibit similar inhibition of the ability of arteries to dilate in response to the need for more blood flow.[35] This change reflects damage to the lining of the arteries (the vascular endothelium), which increases both the risk of long-term heart disease and an acute event such as a myocardial infarction (heart attack).[35] Using e-cigarettes is also accompanied by a shift in balance of the autonomic (reflex) nervous system toward sympathetic predominance, which is also associated with increased cardiac risk.[35] Daily e-cigarette use is correlated with an increased risk of a heart attack (myocardial infarction) in health surveys.[35]

Other Effects

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Gastrointestinal System

As part of the gastrointestinal system, there is a mucosal intestinal barrier that separates the external and internal environments within the human body. [340] This selectively permeable barrier allows water, ions, solutes, and nutrients to be transported through while preventing bacteria and toxins from passing thereby protecting the body. [341] As part of the gut barrier, there are tight junctions that help with the construction and permeability of the barrier by firmly securing joints in the barrier. [342] Chronic, repetitive exposure to e-cigarettes damages this gut epithelial barrier which causes gut inflammation and increased risk of bacterial infections in the gut lining. [343] Essentially, over time e-cigarettes compromise the epithelial barrier by breaking the tight junctions, which alters gene expression and causes susceptibility for bacterial infections leading to chronic inflammation and epithelial damage. [344] Recent RNA-sequencing studies have determined that the e-liquid found in e-cigarettes is responsible for causing changes in gene expression in the gastrointestinal tract. [345] Transcriptome and histologic studies have further shown the health impact of e-cigarettes on gut health, and revealed that chronic use of nicotine free e-cigarettes cause inflammation and decrease in tight junction (TJ) markers. [346] This research substantiated the claim that non-nicotine components of e-cigarettes are still detrimental to the gastrointestinal system.

Common health effects that occur with e-cigarette use are nausea, vomiting, gastrointestinal discomfort, xerostomia, oral mucositis, gum bleeding, gingivitis, gastric burning, altered bowel habits, and acid reflux.[347] All in all, chronic exposure to e-cigarettes increases susceptibility to bacterial infections, drives inflammation in the colon, and reduces gene expression related to gut barrier function. As some of the current studies are limited in nature with lack of follow-up over time, further evaluation is needed to fully understand the scope of effects of electronic cigarette exposure on the gastrointestinal system.[347]

Nervous System

The impact of e-cigarette and its neurotoxic effects on the nervous system has been the subject of numerous studies. A recent preliminary study showed that chronic exposure of e-liquid decreased development of nematodes, caused impaired growth, affected advanced learning and memory, and resulted in abnormal neuromotor behavior. [348] Nicotine exposure has detrimental effects on the nervous system, especially during adolescence when the brain is still developing. [349] By introducing nicotine exposure during this developmental stage, the structure and function of the developing brain changes over time. For example, e-cigarette use is linked to impairment of cognitive processes, increased risk and rate of developing mood disorders and addiction, damage to functions such as memory, reasoning, impulse control, and attention.[350] An in vivo mice model study found that electronic cigarettes decrease occludin gene expression. [351] Occludin is a protein that helps to stabilize the blood-brain-barrier. [352] Altering occludin compromises the stability and strength of the blood-brain-barrier which can cause neurovascular dysfunction, neuroinflammation, and cognitive defects. [353] Studies in animal models also found that chronic exposure to e-cigarettes lead to toxic metal aggregation in the central nervous system in mice. [354]

Digestive System - Oral Cavity

There is little evidence indicating that using e-cigarettes over tradititional cigarettes will help periodontal disease.[355] Vaping with or without nicotine or flavoring can lead to increased risk of periodontal disease.[356] Nicotine as well as their flavoring may be damaging to periodontal ligament, stem cells, and gingival fibroblasts in cultures as a result of creation of aldehydes and/or carbonyls from e-cigarette vapor.[356] It is possible that e-cigarettes could harm the periodontium because of the effects of nicotine on gum tissues and the immune system.[357] Vaping resulted in nicotine stomatitis, hairy tongue, and angular cheilitis.[358] Vaping can cause oral mucosal lesions.[359] No compelling evidence from using electronic cigarettes indicates it directly causes oral cancer.[358]

Considerations in Pregnancy/Lactation

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Although electronic cigarettes are used by some to help stop smoking, it is discouraged for pregnant and breastfeeding females to substitute cigarettes with e-cigarettes due to the uncertainty about ingredients.[26] [360] Currently, the FDA has not approved electronic cigarettes as a smoking cessation aid which is why they discourage use in those pregnant with a developing fetus.[361] Electronic cigarettes containing chemicals, flavors, additives, and nicotine can cause permanent, long-term effects on the developing brain of a baby. [362] Because e-cigarettes are unregulated, often the amount of nicotine is not standardized so it is possible that there are higher amounts of nicotine with e-cigarettes compared to traditional cigarettes. [363] One study comparing irritability infants between those exposed to electronic cigarettes during pregnancy versus those not exposed to any maternal smoking found increased irritability among infants in the exposed group. [364]

Currently, it is unclear what impact electronic cigarette use can have on breastfeeding, but it is not recommended to use. Some studies confirm that nicotine is able to transfer into breast milk and can lead to spikes in heart rate and blood pressure for infants drinking nicotine concentrated milk. [365]

Regardless of which stage of pregnancy one is at, the recommendation is to quit smoking cigarettes altogether through smoking cessation therapy rather than turning to e-cigarettes as an alternative. [366] The current recommendation by the U.S. Preventive Services Task Force (USPSTF) for pregnant persons is to seek medical advice from clinicians and use behavioral interventions for cessation. [367] There are many resources and treatments available to help anyone looking to quit e-cigarettes and tobacco cigarettes during pregnancy. Some of these include talking with a healthcare provider team, and utilizing the 1-800-QUIT-NOW (1-800-784-8669) quitline that has resources for those needing advice, support, and referrals. [368]

Public Perceptions

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Marketing and advertisement play a significant role in the public's perception of e-cigarettes.[142] Some tobacco users think vaping is safer than tobacco or other smoking cessation aids.[369] It is generally considered by users that e-cigarettes are safer than tobacco.[247] Emerging research indicates that vaping is not as safe as previously thought.[370] Many users think that e-cigarettes are healthier than traditional cigarettes for personal use or for other people.[178] Many youth believe vaping is a safe substitute to traditional cigarettes.[179] For this reason, e-cigarettes have been thought to negate years of progress in preventing tobacco usage as a whole.[371]A 2016 review suggests "that the perceived health risks, specific product characteristics (such as taste, price and inconspicuous use), and higher levels of acceptance among peers and others potentially make e-cigarettes initially more attractive to adolescents than tobacco cigarettes.[372] Further, there has been a "nonlinear increase" in the use of e-cigarettes from 1.5 to 11.3% within a 6-year time period (2011-2017) among the high school demographic.[371] Youths who have lower harm perceptions may be particularly susceptible to e-cigarette and polytobacco use, conversely those who perceive e-cigarettes as more harmful would be less likely to use them.[373] Usually, only a small proportion of users are concerned about the potential adverse health effects or toxicity of e-cigarettes.[178] A nation-wide US survey among adults found 11.1% thought vaping during pregnancy was not as harmful as smoking, 51.0% thought it was as harmful, 11.6% thought it would be an increased harm, and 26.2% were unsure.[374] A 2015 study showed that 60% of all adolescence stated vaping were safe or a minor health risk and that 53.4% considered vaping safer than cigarette smoking.[29] A 2017 review found, based on literature from January 2006 to October 2016, examining perceptions regarding vaping during pregnancy, that the majority of respondents perceived vaping can carry health risks to mother and child, but also thought they may be less harmful than traditional cigarettes.[375] Many adolescent asthmatics have a favorable view of vaping.[165] A 2016 survey of people 14 years of age and up in Germany reported that 20.7% of participants consider e-cigarettes to be not as harmful as cigarettes, 46.3% just as harmful, and 16.1% thought they were more harmful, and 17.0% gave no answer.[376] In terms of harm perception, a 2016 study found that flavored e-cigarette use reduced the prevalence of perception of the dangers of tobacco use among youth.[230] Another 2016 study found more nuanced results, demonstrating that tobacco flavor increased harm perception while fruit and sweet flavors decreased harm perception among UK adolescents.[230] Similarly, a 2016 study in the US found that, for US adolescents, fruit-flavored e-cigarettes were perceived to be less harmful than tobacco flavored ones.[230] There is indication that an individual's perception of a substance's potential harms and benefits and their behavior of use is influenced by the availability of information discussing the health effects of that substance.[377] A 2015 analysis reports that 34.20% (8433/24,658) of American youth sampled believe that e-cigarettes are less harmful than cigarettes, and 45% (11,096/24,658) are not sure.[377]

As of 2018, under 50% of adults in the UK believe vaping is less harmful than smoking.[378] Action on Smoking and Health (ASH) in the UK found that in 2015, compared to the year before, "there has been a growing false belief that electronic cigarettes could be as harmful as smoking".[379] Among smokers who had heard of e-cigarettes but never tried them, this "perception of harm has nearly doubled from 12% in 2014 to 22% in 2015."[379] ASH expressed concern that "The growth of this false perception risks discouraging many smokers from using electronic cigarettes to quit and keep them smoking instead which would be bad for their health and the health of those around them."[379] A 2015 PHE report noted that in the US belief among respondents to a survey that vaping was safer than smoking cigarettes fell from 82% in 2010 to 51% in 2014.[380] The report blamed "misinterpreted research findings", attracting negative media coverage, for the growth in the "inaccurate" belief that e-cigarettes were as harmful as smoking.[381] A 2017 review noted that there is a public misconception that vaping is safer than cigarette smoking.[382] A 2016 review noted that the increasing use of e-cigarettes may be due in part to "the misperception that e-cigarettes are a safer alternative to traditional cigarettes."[383] A 2014 review noted that "users do not appear to fully understand their health risks."[261] Beliefs on vaping may be surpassing our scientific knowledge of these products.[384] Proponents of vaping have stated that nicotine is 'as safe as caffeine'.[385] E-cigarettes are believed to be considerably safer compared with smoking and nicotine is thought to be comparatively harmless.[386] As a consequence, it is believed to be without risk to use them indoors or near babies.[386]

A 2014 worldwide survey found that 88% of respondents stated that vaping were less harmful than cigarette smoke and 11% believed that vaping were absolutely harmless.[387] A 2013 four-country survey found higher than 75% of current and former smokers think e-cigarettes are safer than traditional cigarettes.[71] A 2017 report found that among high income countries, Republic of Korea in 2016 was 66%, the US in 2016 was 37%, Netherlands in 2015 was 32%, Canada in 2016 was 30%, the UK in 2016 was 24%, Australia in 2016 was 22%, Uruguay in 2014 was 19%, and among low income countries, Malaysia in 2013 was 70%, Zambia in 2014 was 57%, Thailand in 2012 was 54%, Mexico from 2014 to 2015 was 38%, Bangladesh from 2014 to 2015 was 37%, Brazil from 2012 to 2013 was 22%, and China from 2013 to 2015 was 15%, for the percentage of respondents of adult smokers believing e-cigarette use is just as risky or more risky to health than cigarettes.[388]

A 2016 review found that "The vaping communities' apparent lack of acknowledgment of the potential negative impacts of e-cigarettes appears to have discredited them in the eyes of many public health officials. Continuing down this path may generate beliefs that the vaping community cares little for public health, are primarily interested in selling their fast-growing companies to the highest tobacco company bidder, and will oppose any meaningful regulations of their product, however reasonable and necessary they may be—essentially aligning the vaping community's practices to tobacco companies' well-established playbook."[389] A 2017 review found that "Although it was originally argued that e‐cigarettes are 'harm free,' the present prevailing belief is that they are 'reduced harm' alternatives to conventional cigarettes. This latter notion is still debatable and not supported by conclusive evidence, especially considering the wide variation between e‐cigarette products."[87] E-cigarette advertisements with warnings could strengthen e-cigarette harm perceptions, and lower the likelihood of buying e-cigarettes.[390]

Overall, electronic cigarettes were originally intended to be used as a way to reduce harm and quit smoking in relation to other tobacco products already on the market. Over time, the product became increasingly popular in the youth of the United States due to marketing, accessibility, e-liquid flavors, amount of delivered tobacco products, and lack of information regarding the effects on health.[391]

The use of electronic cigarettes in youth (Middle School and High School) of the United States remains the most commonly used type of device containing tobacco by a significant margin as of the 2023 National Youth Tobacco Survey. While trends have shown a decrease in electronic cigarette use in high school students and an increase in electronic cigarette use in middle school students, it is estimated that about 2.8 million youth currently use any tobacco product.[392] It is thought that youths who were more exposed to negative news about electronic cigarettes influenced their beliefs towards harmfulness of them. Other things to take into consideration include: increased vulnerability of youth to marketing, social influence and peer pressure as a way for them to be more incorporated in their communities. As public knowledge about effects of electronic cigarettes increase along with their studies, it is thought to contribute to lowering the usage of electronic cigarettes.[391]

The largest age group contributing to the use and purchase of electronic cigarettes are young adults, which include an age range from teens to 30’s. A questionnaire examining college students demonstrated that current users believe that electronic cigarettes are more convenient and taste and smell better than traditional tobacco products. Another notable result was the trend among current electronic cigarette users to have reported no previous use of tobacco. This would be contraindicative of what the original claims of electronic cigarettes manufacturers when they were introduced to the market. While a majority of electronic cigarette users state the understanding of possible harm to their health, there is also the belief that they are safer than other forms of tobacco.[393]

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See also

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Notes

[edit]
  1. ^ All patients have reported using vaping products.[313] The outbreak has raised concern among public health officials, and revived the debate regarding the effects of vaping.[314] This is the first time that vaping products has been linked to an outbreak of lung illness.[314] Except for one confirmed case in Canada,[315] it seems to be occurring only in the US.[314]
  2. ^ Research suggests when vitamin E acetate is inhaled, it may interfere with normal lung functioning.[316] Vitamin E acetate is used as an additive in the production of e-cigarette, or vaping, products, because it resembles THC oil.[316] Vitamin E acetate is also used as a thickening ingredient in e-liquid.[316]

Bibliography

[edit]

References

[edit]
  1. ^ Jump up to: a b c "Electronic Cigarettes". Centers for Disease Control and Prevention. 7 September 2017.Общественное достояние This article incorporates text from this source, which is in the public domain.
  2. ^ "E-cigarettes around 95% less harmful than tobacco estimates landmark review". GOV.UK. Retrieved 2021-02-27.
  3. ^ Jump up to: a b c d "Electronic nicotine delivery systems" (PDF). World Health Organization. 21 July 2014. pp. 1–13.
  4. ^ Jump up to: a b c d e f g h i j k l m n o p Cheng T (May 2014). "Chemical evaluation of electronic cigarettes". Tobacco Control. 23 (Supplement 2): ii11–ii17. doi:10.1136/tobaccocontrol-2013-051482. PMC 3995255. PMID 24732157.
  5. ^ Jump up to: a b Breland A, Soule E, Lopez A, Ramôa C, El-Hellani A, Eissenberg T (April 2017). "Electronic cigarettes: what are they and what do they do?". Annals of the New York Academy of Sciences. 1394 (1): 5–30. Bibcode:2017NYASA1394....5B. doi:10.1111/nyas.12977. PMC 4947026. PMID 26774031.
  6. ^ Darabseh MZ, Selfe J, Morse CI, Degens H (January 2020). "Is vaping better than smoking for cardiorespiratory and muscle function?". Multidisciplinary Respiratory Medicine. 15 (1): 674. doi:10.4081/mrm.2020.674 (inactive 2024-03-29). PMC 7348661. PMID 32670575.{{cite journal}}: CS1 maint: DOI inactive as of March 2024 (link)
  7. ^ Münzel T, Hahad O, Kuntic M, Keaney JF, Deanfield JE, Daiber A (November 2020). "Effects of tobacco cigarettes, e-cigarettes, and waterpipe smoking on endothelial function and clinical outcomes". European Heart Journal. 41 (41): 4057–4070. doi:10.1093/eurheartj/ehaa460. PMC 7454514. PMID 32585699.
  8. ^ CDC's Office on Smoking and Health (2020-11-27). "Smoking and Tobacco Use; Electronic Cigarettes". Centers for Disease Control and Prevention. Retrieved 2021-05-10.
  9. ^ Jump up to: a b c d e f g h i j k l m Farsalinos KE, Polosa R (April 2014). "Safety evaluation and risk assessment of electronic cigarettes as tobacco cigarette substitutes: a systematic review". Therapeutic Advances in Drug Safety. 5 (2): 67–86. doi:10.1177/2042098614524430. PMC 4110871. PMID 25083263.
  10. ^ Jump up to: a b c d e f g h i j k l m n o Hajek P, Etter JF, Benowitz N, Eissenberg T, McRobbie H (November 2014). "Electronic cigarettes: review of use, content, safety, effects on smokers and potential for harm and benefit". Addiction. 109 (11): 1801–1810. doi:10.1111/add.12659. PMC 4487785. PMID 25078252.
  11. ^ Jump up to: a b c d e f g h i j k l m n Brandon TH, Goniewicz ML, Hanna NH, Hatsukami DK, Herbst RS, Hobin JA, et al. (February 2015). "Electronic nicotine delivery systems: a policy statement from the American Association for Cancer Research and the American Society of Clinical Oncology". Clinical Cancer Research. 21 (3): 514–525. doi:10.1158/1078-0432.CCR-14-2544. PMID 25573384.
  12. ^ Jump up to: a b c d Durmowicz EL (May 2014). "The impact of electronic cigarettes on the paediatric population". Tobacco Control. 23 (Supplement 2): ii41–ii46. doi:10.1136/tobaccocontrol-2013-051468. PMC 3995262. PMID 24732163.
  13. ^ Jump up to: a b c d e f g h i j k l m n o p q r s t u v w x y Grana R, Benowitz N, Glantz SA (May 2014). "E-cigarettes: a scientific review". Circulation. 129 (19): 1972–1986. doi:10.1161/circulationaha.114.007667. PMC 4018182. PMID 24821826.
  14. ^ Detailed reference list is located at a separate image page.
  15. ^ "RCP statement on e-cigarettes". Royal College of Physicians. 25 June 2014.
  16. ^ Hartmann-Boyce J, Lindson N, Butler AR, McRobbie H, Bullen C, Begh R, et al. (Cochrane Tobacco Addiction Group) (November 2022). "Electronic cigarettes for smoking cessation". The Cochrane Database of Systematic Reviews. 11 (11): CD010216. doi:10.1002/14651858.CD010216.pub7. PMC 9668543. PMID 36384212.
  17. ^ Jump up to: a b c d e Marques P, Piqueras L, Sanz MJ (2021). "An updated overview of e-cigarette impact on human health". Respiratory Research. 22 (1): 151. doi:10.1186/s12931-021-01737-5. ISSN 1465-993X. PMC 8129966. PMID 34006276.
  18. ^ Jump up to: a b c MacDonald M, O'Leary R, Stockwell T, Reist D (May 2016). "Clearing the air: protocol for a systematic meta-narrative review on the harms and benefits of e-cigarettes and vapour devices". Systematic Reviews. 5 (1): 85. doi:10.1186/s13643-016-0264-y. PMC 4875675. PMID 27209032. This article incorporates text by Marjorie MacDonald, Renee O'Leary, Tim Stockwell, and Dan Reist available under the CC BY 4.0 license.
  19. ^ Jump up to: a b c d Dagaonkar RS, Udwadi ZF (April 2014). "Water pipes and E-cigarettes: new faces of an ancient enemy" (PDF). The Journal of the Association of Physicians of India. 62 (4): 324–328. PMID 25327035. Archived from the original (PDF) on 2016-03-04. Retrieved 2015-02-25.
  20. ^ Jump up to: a b Caponnetto P, Russo C, Bruno CM, Alamo A, Amaradio MD, Polosa R (March 2013). "Electronic cigarette: a possible substitute for cigarette dependence". Monaldi Archives for Chest Disease = Archivio Monaldi per le Malattie del Torace. 79 (1): 12–19. doi:10.4081/monaldi.2013.104. PMID 23741941.
  21. ^ Brady BR, De La Rosa JS, Nair US, Leischow SJ (January 2019). "Electronic Cigarette Policy Recommendations: A Scoping Review". American Journal of Health Behavior. 43 (1): 88–104. doi:10.5993/AJHB.43.1.8. PMID 30522569. S2CID 54566712.
  22. ^ McCausland K, Maycock B, Jancey J (November 2017). "The messages presented in online electronic cigarette promotions and discussions: a scoping review protocol". BMJ Open. 7 (11): e018633. doi:10.1136/bmjopen-2017-018633. PMC 5695349. PMID 29122804.
  23. ^ "What about electronic cigarettes? Aren't they safe?". American Cancer Society. Archived from the original on 2014-09-23. Retrieved 2015-02-24.
  24. ^ "Ways to quit". Canadian Cancer Society. 2016. Archived from the original on 2015-12-08. Retrieved 2015-02-24.
  25. ^ "Nicotine products can help people to cut down before quitting smoking". National Institute for Health and Care Excellence. June 2013. Archived from the original on 2015-11-19. Retrieved 2015-02-24.
  26. ^ Jump up to: a b c d Smith L, Brar K, Srinivasan K, Enja M, Lippmann S (June 2016). "E-cigarettes: How "safe" are they?". The Journal of Family Practice. 65 (6): 380–385. PMID 27474819.
  27. ^ Jump up to: a b c d Oh AY, Kacker A (December 2014). "Do electronic cigarettes impart a lower potential disease burden than conventional tobacco cigarettes? Review on E-cigarette vapor versus tobacco smoke". The Laryngoscope. 124 (12): 2702–2706. doi:10.1002/lary.24750. PMID 25302452. S2CID 10560264.
  28. ^ Smith N (20 January 2016). "Headlines about e-cigarettes don't mean they're 'not safer than tobacco'". Cancer Research UK. Archived from the original on 14 February 2019. Retrieved 13 February 2019.
  29. ^ Jump up to: a b Greenhill R, Dawkins L, Notley C, Finn MD, Turner JJ (December 2016). "Adolescent Awareness and Use of Electronic Cigarettes: A Review of Emerging Trends and Findings". The Journal of Adolescent Health. 59 (6): 612–619. doi:10.1016/j.jadohealth.2016.08.005. PMID 27693128.
  30. ^ Jump up to: a b c d Palazzolo DL (November 2013). "Electronic cigarettes and vaping: a new challenge in clinical medicine and public health. A literature review". Frontiers in Public Health. 1 (56): 56. doi:10.3389/fpubh.2013.00056. PMC 3859972. PMID 24350225. This article incorporates text by Dominic L. Palazzolo available under the CC BY 3.0 license.
  31. ^ Jump up to: a b c Nansseu JR, Bigna JJ (2016). "Electronic Cigarettes for Curbing the Tobacco-Induced Burden of Noncommunicable Diseases: Evidence Revisited with Emphasis on Challenges in Sub-Saharan Africa". Pulmonary Medicine. 2016: 4894352. doi:10.1155/2016/4894352. PMC 5220510. PMID 28116156. This article incorporates text by Jobert Richie N. Nansseu and Jean Joel R. Bigna available under the CC BY 4.0 license.
  32. ^ Jump up to: a b c d e f g h i Bhatnagar A, Whitsel LP, Ribisl KM, Bullen C, Chaloupka F, Piano MR, et al. (October 2014). "Electronic cigarettes: a policy statement from the American Heart Association". Circulation. 130 (16): 1418–1436. doi:10.1161/CIR.0000000000000107. PMC 7643636. PMID 25156991.
  33. ^ Knight-West O, Bullen C (2016). "E-cigarettes for the management of nicotine addiction". Substance Abuse and Rehabilitation. 7: 111–118. doi:10.2147/SAR.S94264. PMC 4993405. PMID 27574480.
  34. ^ Jump up to: a b c d Drope J, Cahn Z, Kennedy R, Liber AC, Stoklosa M, Henson R, et al. (November 2017). "Key issues surrounding the health impacts of electronic nicotine delivery systems (ENDS) and other sources of nicotine". CA. 67 (6): 449–471. doi:10.3322/caac.21413. PMID 28961314.
  35. ^ Jump up to: a b c d e f g h i j k l m n o p q r s t u v w x y z aa ab ac ad ae af ag ah ai aj ak al am an ao ap aq ar as at Glantz SA, Bareham DW (April 2018). "E-Cigarettes: Use, Effects on Smoking, Risks, and Policy Implications". Annual Review of Public Health. 39 (1): 215–235. doi:10.1146/annurev-publhealth-040617-013757. PMC 6251310. PMID 29323609. This article incorporates text by Stanton A. Glantz and David W. Bareham available under the CC BY 4.0 license.
  36. ^ "Regulation of Electronic Cigarettes ("E-Cigarettes")" (PDF). National Association of County and City Health Officials. Archived from the original (PDF) on 6 November 2014.
  37. ^ "Did You Know? – Public Health Impact". Surgeon General of the United States. 2019.Общественное достояние This article incorporates text from this source, which is in the public domain.
  38. ^ Jankowski M, Krzystanek M, Zejda JE, Majek P, Lubanski J, Lawson JA, et al. (June 2019). "E-Cigarettes are More Addictive than Traditional Cigarettes-A Study in Highly Educated Young People". International Journal of Environmental Research and Public Health. 16 (13): 2279. doi:10.3390/ijerph16132279. PMC 6651627. PMID 31252671.
  39. ^ Jump up to: a b c d e "Electronic Cigarettes – An Overview" (PDF). German Cancer Research Center. 2013.
  40. ^ Jump up to: a b c Evans SE, Hoffman AC (May 2014). "Electronic cigarettes: abuse liability, topography and subjective effects". Tobacco Control. 23 (Supplement 2): ii23–ii29. doi:10.1136/tobaccocontrol-2013-051489. PMC 3995256. PMID 24732159.
  41. ^ Kalkhoran S, Glantz SA (February 2016). "E-cigarettes and smoking cessation in real-world and clinical settings: a systematic review and meta-analysis". The Lancet. Respiratory Medicine. 4 (2): 116–128. doi:10.1016/S2213-2600(15)00521-4. PMC 4752870. PMID 26776875.
  42. ^ Jump up to: a b Sanford Z, Goebel L (2014). "E-cigarettes: an up to date review and discussion of the controversy". The West Virginia Medical Journal. 110 (4): 10–15. PMID 25322582.
  43. ^ Jump up to: a b Smith L, Brar K, Srinivasan K, Enja M, Lippmann S (June 2016). "E-cigarettes: How "safe" are they?". The Journal of Family Practice. 65 (6): 380–385. PMID 27474819.
  44. ^ Jump up to: a b Hartmann-Boyce J, Lindson N, Butler AR, McRobbie H, Bullen C, Begh R, et al. (November 2022). "Electronic cigarettes for smoking cessation". The Cochrane Database of Systematic Reviews. 11 (11): CD010216. doi:10.1002/14651858.CD010216.pub7. PMC 9668543. PMID 36384212.
  45. ^ Jump up to: a b c d England LJ, Aagaard K, Bloch M, Conway K, Cosgrove K, Grana R, et al. (January 2017). "Developmental toxicity of nicotine: A transdisciplinary synthesis and implications for emerging tobacco products". Neuroscience and Biobehavioral Reviews. 72: 176–189. doi:10.1016/j.neubiorev.2016.11.013. PMC 5965681. PMID 27890689.
  46. ^ "STATE System E-Cigarette Fact Sheet". www.cdc.gov. 2024-06-24. Retrieved 2024-07-29.
  47. ^ Jump up to: a b c d e Wolff MS, Buckley JP, Engel SM, McConnell RS, Barr DB (April 2017). "Emerging exposures of developmental toxicants". Current Opinion in Pediatrics. 29 (2): 218–224. doi:10.1097/MOP.0000000000000455. PMC 5473289. PMID 28059904.
  48. ^ Jump up to: a b Lødrup Carlsen KC, Skjerven HO, Carlsen KH (September 2018). "The toxicity of E-cigarettes and children's respiratory health". Paediatric Respiratory Reviews. 28: 63–67. doi:10.1016/j.prrv.2018.01.002. PMID 29580719. S2CID 4368058.
  49. ^ "Vaping Is Not Harm-Free: Don't Take The Vape". Boca Raton FL: Better World Publishing.
  50. ^ Klemperer EM, Villanti AC (2021-02-16). "Why and how do dual users quit vaping? Survey findings from adults who use electronic and combustible cigarettes". Tobacco Induced Diseases. 19: 12. doi:10.18332/tid/132547. PMC 7885258. PMID 33603595.
  51. ^ McNeill 2015, p. 76.
  52. ^ McNeill 2018, p. 175.
  53. ^ Jump up to: a b Couch ET, Chaffee BW, Gansky SA, Walsh MM (July 2016). "The changing tobacco landscape: What dental professionals need to know". Journal of the American Dental Association. 147 (7): 561–569. doi:10.1016/j.adaj.2016.01.008. PMC 4925234. PMID 26988178.
  54. ^ Camenga DR, Tindle HA (July 2018). "Weighing the Risks and Benefits of Electronic Cigarette Use in High-Risk Populations". The Medical Clinics of North America. 102 (4): 765–779. doi:10.1016/j.mcna.2018.03.002. PMID 29933828. S2CID 49389902.
  55. ^ Jump up to: a b Bhatnagar A (June 2016). "Cardiovascular Perspective of the Promises and Perils of E-Cigarettes". Circulation Research. 118 (12): 1872–1875. doi:10.1161/CIRCRESAHA.116.308723. PMC 5505630. PMID 27283531.
  56. ^ "Promote e-cigarettes widely as substitute for smoking says new RCP report". RCP London. 28 April 2016.
  57. ^ Katie Hunt (17 September 2019). "The US and UK see vaping very differently. Here's why". CNN.
  58. ^ "E-cigarettes: regulations for consumer products". GOV.UK. 12 July 2022.
  59. ^ "Public Health Consequences of E-Cigarettes" (PDF).
  60. ^ Palazzolo DL (November 2013). "Electronic cigarettes and vaping: a new challenge in clinical medicine and public health. A literature review". Frontiers in Public Health. 1: 56. doi:10.3389/fpubh.2013.00056. PMC 3859972. PMID 24350225.
  61. ^ Jump up to: a b Reiter A, Hébert-Losier A, Mylocopos G, Filion KB, Windle SB, O'Loughlin JL, et al. (2024). "Regulatory Strategies for Preventing and Reducing Nicotine Vaping Among Youth: A Systematic Review". American Journal of Preventive Medicine. 66 (1): 169–181. doi:10.1016/j.amepre.2023.08.002. PMID 37553038.
  62. ^ Jump up to: a b Saitta D, Ferro GA, Polosa R (March 2014). "Achieving appropriate regulations for electronic cigarettes". Therapeutic Advances in Chronic Disease. 5 (2): 50–61. doi:10.1177/2040622314521271. PMC 3926346. PMID 24587890.
  63. ^ Jump up to: a b c d e f g h i j k l m n o p q r Rom O, Pecorelli A, Valacchi G, Reznick AZ (March 2015). "Are E-cigarettes a safe and good alternative to cigarette smoking?". Annals of the New York Academy of Sciences. 1340 (1): 65–74. Bibcode:2015NYASA1340...65R. doi:10.1111/nyas.12609. PMID 25557889. S2CID 26187171.
  64. ^ "E-Cigarettes". Tobacco Control Research Branch of the National Cancer Institute.
  65. ^ "Clarification of When Products Made or Derived From Tobacco Are Regulated as Drugs, Devices, or Combination Products; Amendments to Regulations Regarding "Intended Uses"". Federal Register. 2017-01-09. Retrieved 2024-07-31.
  66. ^ Products Cf (2022-12-09). "Family Smoking Prevention and Tobacco Control Act Table of Contents". FDA.
  67. ^ Jump up to: a b "Tobacco Product or Medical Product?". U.S. Food and Drug Administration. 2018-02-21. Retrieved 2024-07-31.
  68. ^ Products Cf (2022-12-09). "Family Smoking Prevention and Tobacco Control Act Table of Contents". FDA.
  69. ^ Products Cf (2022-09-26). "Tobacco 21". FDA.
  70. ^ "California Prohibits Retailers from Selling Flavored Tobacco Products". www.cdph.ca.gov. Retrieved 2024-07-31.
  71. ^ Jump up to: a b c d e f g h i Ebbert JO, Agunwamba AA, Rutten LJ (January 2015). "Counseling patients on the use of electronic cigarettes". Mayo Clinic Proceedings. 90 (1): 128–134. doi:10.1016/j.mayocp.2014.11.004. PMID 25572196.
  72. ^ Jump up to: a b c d e f g h i j k l m n Rowell TR, Tarran R (December 2015). "Will chronic e-cigarette use cause lung disease?". American Journal of Physiology. Lung Cellular and Molecular Physiology. 309 (12): L1398–L1409. doi:10.1152/ajplung.00272.2015. PMC 4683316. PMID 26408554.
  73. ^ Jump up to: a b c d Kaisar MA, Prasad S, Liles T, Cucullo L (July 2016). "A decade of e-cigarettes: Limited research & unresolved safety concerns". Toxicology. 365: 67–75. Bibcode:2016Toxgy.365...67K. doi:10.1016/j.tox.2016.07.020. PMC 4993660. PMID 27477296.
  74. ^ Jump up to: a b Yang L, Rudy SF, Cheng JM, Durmowicz EL (May 2014). "Electronic cigarettes: incorporating human factors engineering into risk assessments". Tobacco Control. 23 (Supplement 2): ii47–ii53. doi:10.1136/tobaccocontrol-2013-051479. PMC 3995290. PMID 24732164.
  75. ^ Jump up to: a b c d e Schraufnagel DE (March 2015). "Electronic Cigarettes: Vulnerability of Youth". Pediatric Allergy, Immunology, and Pulmonology. 28 (1): 2–6. doi:10.1089/ped.2015.0490. PMC 4359356. PMID 25830075.
  76. ^ Patnode CD, Henderson JT, Thompson JH, Senger CA, Fortmann SP, Whitlock EP (September 2015). "Behavioral Counseling and Pharmacotherapy Interventions for Tobacco Cessation in Adults, Including Pregnant Women: A Review of Reviews for the U.S. Preventive Services Task Force". Annals of Internal Medicine. 163 (8): 608. doi:10.7326/M15-0171. PMID 26491759. S2CID 207538340.
  77. ^ Jump up to: a b c d e f g h i j Cooke A, Fergeson J, Bulkhi A, Casale TB (2015). "The Electronic Cigarette: The Good, the Bad, and the Ugly". The Journal of Allergy and Clinical Immunology. In Practice. 3 (4): 498–505. doi:10.1016/j.jaip.2015.05.022. PMID 26164573.
  78. ^ Jump up to: a b c d e f g h i j k l m n o p q r Bertholon JF, Becquemin MH, Annesi-Maesano I, Dautzenberg B (2013). "Electronic cigarettes: a short review". Respiration; International Review of Thoracic Diseases. 86 (5): 433–438. doi:10.1159/000353253. PMID 24080743. S2CID 20521181.
  79. ^ Jump up to: a b c d e Hildick-Smith GJ, Pesko MF, Shearer L, Hughes JM, Chang J, Loughlin GM, et al. (December 2015). "A Practitioner's Guide to Electronic Cigarettes in the Adolescent Population". The Journal of Adolescent Health. 57 (6): 574–579. doi:10.1016/j.jadohealth.2015.07.020. PMID 26422289.
  80. ^ Górski P (2019). "E-cigarettes or heat-not-burn tobacco products - advantages or disadvantages for the lungs of smokers". Advances in Respiratory Medicine. 87 (2): 123–134. doi:10.5603/ARM.2019.0020. PMID 31038725.
  81. ^ Jump up to: a b c d e f g Paley GL, Echalier E, Eck TW, Hong AR, Farooq AV, Gregory DG, et al. (July 2016). "Corneoscleral Laceration and Ocular Burns Caused by Electronic Cigarette Explosions". Cornea. 35 (7): 1015–1018. doi:10.1097/ICO.0000000000000881. PMC 4900417. PMID 27191672.
  82. ^ Wilder 2016, p. 127.
  83. ^ Перейти обратно: а б «Потенциальные неблагоприятные последствия для здоровья воздействия электронных сигарет и электронных систем доставки никотина». Форум медицинских сестер онкологии . 42 (5): 445–446. Сентябрь 2015 г. doi : 10.1188/15.ONF.445-446 . ПМИД   26302273 . S2CID   38347100 .
  84. ^ Перейти обратно: а б с д и Сингх Дж., Люке Э., Смит Д.П., Потгитер Х.Дж., Рагаццон П. (декабрь 2016 г.). «Токсикологическая и аналитическая оценка компонентов заправки электронных сигарет на эпителии дыхательных путей» (PDF) . Научный прогресс . 99 (4): 351–398. дои : 10.3184/003685016X14773090197706 . ПМЦ   10365464 . ПМИД   28742478 . S2CID   4573125 .
  85. ^ Перейти обратно: а б с д Гуалано М.Р., Пасси С., Берт Ф., Ла Торре Дж., Скайоли Дж., Силикини Р. (сентябрь 2015 г.). «Электронные сигареты: оценка эффективности и побочных эффектов посредством систематического обзора опубликованных исследований» . Журнал общественного здравоохранения . 37 (3): 488–497. doi : 10.1093/pubmed/fdu055 . ПМИД   25108741 .
  86. ^ Страттон 2018 , с. Увлажнители (растворители для доставки), 157.
  87. ^ Перейти обратно: а б с д и ж г час я дж к л м н тот п д р Касим Х., Карим З.А., Ривера Д.О., Хасауна Ф.Т., Альшбул Ф.З. (август 2017 г.). «Влияние электронных сигарет на сердечно-сосудистую систему» . Журнал Американской кардиологической ассоциации . 6 (9): e006353. дои : 10.1161/JAHA.117.006353 . ПМЦ   5634286 . ПМИД   28855171 .
  88. ^ Маклин Р.Р., Валентайн Г.В., Джатлоу П.И., Софуоглу М. (февраль 2017 г.). «Вдыхание паров алкоголя: измерение и последствия» . Алкоголизм: клинические и экспериментальные исследования . 41 (2): 238–250. дои : 10.1111/acer.13291 . ПМК   6143144 . ПМИД   28054395 .
  89. ^ Лаутерштейн Д., Хосино Р., Гордон Т., Уоткинс Б.С., Вайцман М., Зеликофф Дж. (2014). «Меняющееся лицо употребления табака среди молодежи США» . Текущие обзоры злоупотребления наркотиками . 7 (1): 29–43. дои : 10.2174/1874473707666141015220110 . ПМК   4469045 . ПМИД   25323124 .
  90. ^ Перейти обратно: а б с Паттерсон С.Б., Беккет А.Р., Линтнер А., Лихи С., Грир А., Бревард С.Б. и др. (2017). «Новая система классификации травм после взрывов электронных сигарет». Журнал ухода за ожогами и исследований . 38 (1): е95–е100. дои : 10.1097/BCR.0000000000000471 . ПМИД   27893577 . S2CID   3433324 .
  91. ^ Перейти обратно: а б с «Знай риски» . Главный хирург США. 2016. Общественное достояние В данную статью включен текст из этого источника, находящегося в свободном доступе .
  92. ^ Страттон 2018 , с. Резюме, Заключение 14-1.; 9.
  93. ^ Перейти обратно: а б с Серрор К., Шауат М., Легран М.М., Депрет Ф., Хаддад Дж., Малка Н. и др. (май 2018 г.). «Ожоги, вызванные электронными устройствами для парения (электронными сигаретами): новое классификационное предложение, основанное на механизмах». Бернс . 44 (3): 544–548. дои : 10.1016/j.burns.2017.09.005 . ПМИД   29056367 .
  94. ^ Перейти обратно: а б с д Арнаут А., Хашаба Х., Доббс Т., Деви Ф., Поуп-Джонс С., Сак А. и др. (июнь 2017 г.). «Опыт организации Southwest UK Burns Network (SWUK) по взрывам электронных сигарет и обзор литературы». Бернс . 43 (4): e1–e6. doi : 10.1016/j.burns.2017.01.008 . ПМИД   28412133 .
  95. ^ Макнил 2018 , с. 149.
  96. ^ Перейти обратно: а б с Харшман Дж., Войводич М., Роджерс А.Д. (октябрь 2018 г.). «Ожоги, связанные с батареями электронных сигарет: серия случаев и обзор литературы» . ЧЕМ . 20 (С2): С20–С28. дои : 10.1017/сем.2017.32 . ПМИД   28566106 .
  97. ^ Трейтл Д., Соломон Р., Даваре Д.Л., Санчес Р., Киффин С. (июль 2017 г.). «Ожоги полной и частичной толщины в результате самовозгорания литий-ионных батарей электронных сигарет с обзором литературы». Журнал неотложной медицины . 53 (1): 121–125. doi : 10.1016/j.jemermed.2017.03.031 . ПМИД   28501385 .
  98. ^ «Защитите свою семью от электронных сигарет – факты, которые вам нужно знать» (PDF) . Департамент общественного здравоохранения Калифорнии. 29 октября 2014 г. Архивировано из оригинала (PDF) 10 января 2019 г. . Проверено 4 мая 2020 г.
  99. ^ Перейти обратно: а б с д и ж г час я «Пожары и взрывы электронных сигарет в США в 2009–2016 гг.» (PDF) . Управление пожарной охраны США . Июль 2017. стр. 1–56. Общественное достояние В данную статью включен текст из этого источника, находящегося в свободном доступе .
  100. ^ Хики С., Говерман Дж., Фридстат Дж., Шеридан Р., Шульц Дж. (август 2018 г.). «Термические травмы от взрыва электронных сигарет». Бернс . 44 (5): 1294–1301. doi : 10.1016/j.burns.2018.02.008 . ПМИД   29503045 . S2CID   3709168 .
  101. ^ Макадия Л.Д., Ропер П.Дж., Эндрюс Дж.О., Тинген М.С. (август 2017 г.). «Употребление табака и воздействие табачного дыма на детей: новые тенденции, вред и стратегии улучшения показателей здоровья». Текущие отчеты об аллергии и астме . 17 (8): 55. дои : 10.1007/s11882-017-0723-0 . ПМИД   28741144 . S2CID   22360961 .
  102. ^ Перейти обратно: а б с д и ж Воот Б., Спеллман Дж., Шах А., Стюарт А., Маллин Д. (март 2017 г.). «Травма лица, вызванная взрывом электронной сигареты» . Журнал «Ухо, нос и горло» . 96 (3): 139–142. дои : 10.1177/014556131709600314 . ПМИД   28346645 .
  103. ^ Каплан Д. (22 декабря 2016 г.). «Мужчина получил ожоги 3-й степени после того, как электронная сигарета взорвалась в его кармане во время поездки на автобусе» . Новости АВС .
  104. ^ Макнил 2015 , стр. 43–46.
  105. ^ Макнил 2015 , стр. 83–84.
  106. ^ Перейти обратно: а б Макнил 2018 , с. 144.
  107. ^ Шектер С., Чаттопадьяй А., Паро Дж., Каранас Ю. (2016). «Ожоги в результате самовозгорания электронных сигарет: серия случаев» . Ожоги и травмы . 4 (1): 35. дои : 10.1186/s41038-016-0061-9 . ПМК   5151131 . ПМИД   27995151 . В эту статью включен текст Клиффорда Шектера, Арханы Чаттопадхай, Джона Паро и Ивонн Каранас, доступный по лицензии CC BY 4.0 .
  108. ^ Перейти обратно: а б с Лакасс И., Легаре М., Мальтес Ф. (2015). «Употребление электронных сигарет пациентами, получающими домашнюю кислородную терапию» . Канадский респираторный журнал . 22 (2): 83–85. дои : 10.1155/2015/215932 . ПМК   4390016 . ПМИД   25848719 . В эту статью включен текст Ива Лакасса, Мартина Легаре и Франсуа Мальте, доступный по лицензии CC BY 4.0 .
  109. ^ Перейти обратно: а б с д и Уивер М., Бреланд А., Спиндл Т., Айсенберг Т. (2014). «Электронные сигареты: обзор безопасности и клинические вопросы» . Журнал наркологии . 8 (4): 234–240. doi : 10.1097/ADM.0000000000000043 . ПМК   4123220 . ПМИД   25089953 .
  110. ^ Перейти обратно: а б Бреланд А.Б., Спиндл Т., Уивер М., Айсенберг Т. (2014). «Наука и электронные сигареты: текущие данные, будущие потребности» . Журнал наркологии . 8 (4): 223–233. doi : 10.1097/ADM.0000000000000049 . ПМК   4122311 . ПМИД   25089952 .
  111. ^ Подробный список ссылок расположен на отдельной странице с изображением .
  112. ^ Гордон Т., Кэри Э., Ребули М.Э., Эскобар Ю.Н., Джасперс И., Чен Л.К. (06.01.2022). «Токсикология электронных сигарет» . Ежегодный обзор фармакологии и токсикологии . 62 : 301–322. doi : 10.1146/annurev-pharmtox-042921-084202 . ISSN   0362-1642 . ПМЦ   9386787 . ПМИД   34555289 .
  113. ^ Перейти обратно: а б с д и Джо КЛ, Амбс А., Дреслер СМ, Бэкингер КЛ (февраль 2017 г.). «Упаковка, защищенная от взлома и защиты от несанкционированного доступа детьми: систематический обзор для информирования о регулировании упаковки табачных изделий» . Профилактическая медицина . 95 : 89–95. дои : 10.1016/j.ypmed.2016.11.013 . ПМК   5299541 . ПМИД   27939602 .
  114. ^ Йенссен Б.П., Бойкан Р. (февраль 2019 г.). «Электронные сигареты и молодежь в Соединенных Штатах: призыв к действию (на местном, национальном и глобальном уровнях)» . Дети . 6 (2): 30. дои : 10.3390/детей6020030 . ПМК   6406299 . ПМИД   30791645 . В эту статью включен текст Брайана П. Дженссена и Рэйчел Бойкан, доступный по лицензии CC BY 4.0 .
  115. ^ Перейти обратно: а б с д и ж Хуа М., Талбот П. (декабрь 2016 г.). «Потенциальное воздействие электронных сигарет на здоровье: систематический обзор сообщений о случаях заболевания» . Отчеты о профилактической медицине . 4 : 169–178. дои : 10.1016/j.pmedr.2016.06.002 . ПМЦ   4929082 . ПМИД   27413679 . В эту статью включен текст , доступный по лицензии CC BY 4.0 .
  116. ^ Перейти обратно: а б с Бияни С., Деркай CS (август 2015 г.). «Электронные сигареты: соображения для отоларинголога». Международный журнал детской оториноларингологии . 79 (8): 1180–1183. дои : 10.1016/j.ijporl.2015.04.032 . ПМИД   25998217 .
  117. ^ Перейти обратно: а б с д и ж Ким К.Х., Кабир Э., Джахан С.А. (октябрь 2016 г.). «Обзор электронных сигарет как заменителей табачных сигарет: их потенциальное воздействие на здоровье человека». Журнал наук об окружающей среде и здоровье. Часть C, Обзоры канцерогенеза и экотоксикологии в окружающей среде . 34 (4): 262–275. Бибкод : 2016JESHC..34..262K . дои : 10.1080/10590501.2016.1236604 . ПМИД   27635466 . S2CID   42660975 .
  118. ^ Чатем-Стивенс К., Лоу Р., Тейлор Э., Мелстром П., Баннелл Р., Ван Б. и др. (апрель 2014 г.). «Заметки с мест: звонки в токсикологические центры по поводу воздействия электронных сигарет – США, сентябрь 2010 г. – февраль 2014 г.» . ММВР. Еженедельный отчет о заболеваемости и смертности . 63 (13): 292–293. ПМЦ   5779356 . ПМИД   24699766 .
  119. ^ Перейти обратно: а б с д и ж г час я дж к Чатем-Стивенс К., Лоу Р., Тейлор Э., Кишак С., Мелстром П., Баннелл Р. и др. (декабрь 2016 г.). «Звонки в токсикологические центры США, связанные с электронными и обычными сигаретами, сентябрь 2010 г. – декабрь 2014 г.» . Журнал медицинской токсикологии . 12 (4): 350–357. дои : 10.1007/s13181-016-0563-7 . ПМЦ   5135675 . ПМИД   27352081 .
  120. ^ Перейти обратно: а б с Неллури Б.К., Мерфи К., Мукадам Ф. (май 2015 г.). «Электронные сигареты и сердечно-сосудистый риск: шумиха или дым?» . Будущая кардиология . 11 (3): 271–273. дои : 10.2217/fca.15.13 . ПМИД   26021631 .
  121. ^ Чатем-Стивенс К. (20 октября 2014 г.). «Маленькие дети и отравление электронными сигаретами» . Медскейп.
  122. ^ Перейти обратно: а б с д и ж Говиндараджан П., Спиллер Х.А., Казавант М.Дж., Чоунтират Т., Смит Г.А. (май 2018 г.). «Воздействие электронных сигарет и жидкого никотина на детей младшего возраста» . Педиатрия . 141 (5): e20173361. дои : 10.1542/пед.2017-3361 . ПМИД   29686144 .
  123. ^ Перейти обратно: а б с д и «У некоторых пользователей электронных сигарет случаются судороги, большинство сообщений касаются молодежи и молодых людей» . Управление по контролю за продуктами и лекарствами США. 3 апреля 2019 г. Общественное достояние В данную статью включен текст из этого источника, находящегося в свободном доступе .
  124. ^ Jenssen BP, Walley SC (февраль 2019 г.). «Электронные сигареты и аналогичные устройства» . Педиатрия . 143 (2): e20183652. дои : 10.1542/пед.2018-3652 . ПМК   6644065 . ПМИД   30835247 .
  125. ^ Перейти обратно: а б «Новое исследование CDC выявило резкое увеличение количества обращений в токсикологические центры, связанных с электронными сигаретами» . Центры по контролю и профилактике заболеваний. 3 апреля 2014 г. Общественное достояние В данную статью включен текст из этого источника, находящегося в свободном доступе .
  126. ^ Перейти обратно: а б Камбодж А., Спиллер Х.А., Казавант М.Дж., Чоунтират Т., Смит Г.А. (июнь 2016 г.). «Воздействие электронных сигарет, никотина и табачных изделий на детей в Соединенных Штатах» . Педиатрия . 137 (6): e20160041. дои : 10.1542/пед.2016-0041 . ПМИД   27244861 .
  127. ^ Перейти обратно: а б «Электронные сигареты и жидкий никотин» . Американская ассоциация токсикологических центров. 2018.
  128. ^ Перейти обратно: а б Петерсон Л.А., Хехт СС (апрель 2017 г.). «Табак, электронные сигареты и здоровье детей» . Современное мнение в педиатрии . 29 (2): 225–230. дои : 10.1097/MOP.0000000000000456 . ПМЦ   5598780 . ПМИД   28059903 .
  129. ^ Перейти обратно: а б с д и ж г «Будьте свободными от курения и помогите своим питомцам жить дольше и здоровее — электронные системы доставки никотина» . Управление по контролю за продуктами и лекарствами США. 19 октября 2017 г. Общественное достояние В данную статью включен текст из этого источника, находящегося в свободном доступе .
  130. ^ «Электронные сигареты и безопасность домашних животных» . Компания VCA. 2019.
  131. ^ Перейти обратно: а б с д и ж г час Драммонд М.Б., Апсон Д. (февраль 2014 г.). «Электронные сигареты. Потенциальный вред и польза» . Анналы Американского торакального общества . 11 (2): 236–242. doi : 10.1513/annalsats.201311-391fr . ПМЦ   5469426 . ПМИД   24575993 .
  132. ^ Бэм Т.С., Беллью В., Бережнова И., Джексон-Моррис А., Джонс А., Латиф Э. и др. (январь 2014 г.). «Заявление о позиции по электронным сигаретам или электронным системам доставки никотина». Международный журнал туберкулеза и болезней легких . 18 (1): 5–7. дои : 10.5588/ijtld.13.0815 . ПМИД   24365545 . S2CID   26481455 .
  133. ^ Перейти обратно: а б с Офферманн Ф (июнь 2014 г.). «Вред электронных сигарет» . Журнал ASHRAE . 56 (6). [ постоянная мертвая ссылка ]
  134. ^ Перейти обратно: а б «Главный хирург сообщает, что употребление электронных сигарет молодежью и молодыми людьми представляет угрозу общественному здоровью» . Министерство здравоохранения и социальных служб США. 8 декабря 2016 г. Архивировано из оригинала 28 января 2017 г. Проверено 13 марта 2021 г. Общественное достояние В данную статью включен текст из этого источника, находящегося в свободном доступе .
  135. ^ Фернандес Э., Балльбе М., Суреда Х., Фу М., Сальто Э., Мартинес-Санчес Х.М. (декабрь 2015 г.). «Твердые частицы из электронных сигарет и обычных сигарет: систематический обзор и наблюдательное исследование» . Текущие отчеты о состоянии окружающей среды . 2 (4): 423–429. дои : 10.1007/s40572-015-0072-x . ПМИД   26452675 .
  136. ^ Перейти обратно: а б Каллахан-Лайон П. (май 2014 г.). «Электронные сигареты: влияние на здоровье человека» . Контроль над табаком . 23 (Приложение 2): ii36–ii40. doi : 10.1136/tobaccocontrol-2013-051470 . ПМК   3995250 . ПМИД   24732161 .
  137. ^ «Заявление Американской ассоциации легких по электронным сигаретам» . Американская ассоциация легких. 25 августа 2014 г.
  138. ^ Перейти обратно: а б с д и ж г Коллако Дж. М., McGrath-Morrow SA (апрель 2018 г.). «Электронные сигареты: воздействие и использование среди детского населения» . Журнал аэрозольной медицины и доставки легочных лекарств . 31 (2): 71–77. дои : 10.1089/jamp.2017.1418 . ПМЦ   5915214 . ПМИД   29068754 .
  139. ^ Уайлдер 2016 , с. 84.
  140. ^ Хейдари Г., Ахмади А.Е., Чамьяни Ф., Масджеди М., Фадаизаде Л. (2017). «Электронная сигарета, эффективна или вредна для отказа от курения и здоровья органов дыхания: количественный обзор» . Легкие Индия . 34 (1): 25–28. дои : 10.4103/0970-2113.197119 . ПМК   5234193 . ПМИД   28144056 .
  141. ^ Перейти обратно: а б с Кляйнстройер С., Фэн Ю. (сентябрь 2013 г.). «Анализ отложения в легких вдыхаемых токсичных аэрозолей обычного и менее вредного сигаретного дыма: обзор» . Международный журнал экологических исследований и общественного здравоохранения . 10 (9): 4454–4485. дои : 10.3390/ijerph10094454 . ПМЦ   3799535 . ПМИД   24065038 .
  142. ^ Перейти обратно: а б с д и ж Франк С., Филион К.Б., Киммельман Дж., Град Р., Айзенберг М.Дж. (май 2016 г.). «Этические аспекты использования электронных сигарет для снижения вреда от табакокурения» . Респираторные исследования . 17 (1): 53. дои : 10.1186/s12931-016-0370-3 . ПМК   4869264 . ПМИД   27184265 . В эту статью включен текст Кэролайн Франк, Кристиана Б. Филиона, Джонатана Киммельмана, Роланда Града и Марка Дж. Айзенберга, доступный по лицензии CC BY 4.0 .
  143. ^ Перейти обратно: а б Динакар С, О'Коннор GT (октябрь 2016 г.). «Влияние электронных сигарет на здоровье». Медицинский журнал Новой Англии . 375 (14): 1372–1381. дои : 10.1056/NEJMra1502466 . ПМИД   27705269 .
  144. ^ Перейти обратно: а б Барраза Л.Ф., Вайденар К.Е., Кук Л.Т., Лог А.Р., Халперн М.Т. (август 2017 г.). «Правила и политика в отношении электронных сигарет» . Рак . 123 (16): 3007–3014. дои : 10.1002/cncr.30725 . ПМИД   28440949 . S2CID   45269159 .
  145. ^ Перейти обратно: а б с д и ж Каур Дж., Ринку А.В. (сентябрь 2017 г.). «Реализация предстоящей проблемы электронных систем доставки никотина: путь вперед для региона Юго-Восточной Азии» . Индийский журнал общественного здравоохранения . 61 (Приложение 1): S7–S11. дои : 10.4103/ijph.IJPH_240_17 . ПМИД   28928312 .
  146. ^ Перейти обратно: а б с д и Хименес Руис К.А., Солано Рейна С., де Гранда Ориве Х.И., Сигнес-Коста Минайя Х., де Хигес Мартинес Э., Риеско Миранда Х.А. и др. (август 2014 г.). «Электронная сигарета. Официальное заявление Испанского общества пневмологов и торакальной хирургии (SEPAR) об эффективности, безопасности и регулировании электронных сигарет». Архив бронконеумологии . 50 (8): 362–367. дои : 10.1016/j.arbres.2014.02.006 . ПМИД   24684764 .
  147. ^ Перейти обратно: а б с д и ж Бреланд А., Соул Э., Лопес А., Рамоа К., Эль-Хеллани А., Айсенберг Т. (апрель 2017 г.). «Электронные сигареты: что это такое и для чего они нужны?» . Анналы Нью-Йоркской академии наук . 1394 (1): 5–30. Бибкод : 2017NYASA1394....5B . дои : 10.1111/nyas.12977 . ПМК   4947026 . ПМИД   26774031 .
  148. ^ Перейти обратно: а б с д и ж г час я дж к л м н тот п д р с т в «Употребление электронных сигарет среди молодежи и молодых людей: отчет главного хирурга» (PDF) . Главный хирург США. 2016. стр. 1–298. Общественное достояние В данную статью включен текст из этого источника, находящегося в свободном доступе .
  149. ^ Перейти обратно: а б с д и Зайнол Абидин Н., Зайнал Абидин Э., Зулкифли А., Каруппиа К., Сайед Исмаил С.Н., Амер Нордин А.С. (сентябрь 2017 г.). «Электронные сигареты и качество воздуха в помещении: обзор исследований с участием добровольцев» (PDF) . Обзоры на тему Гигиена окружающей среды . 32 (3): 235–244. дои : 10.1515/reveh-2016-0059 . ПМИД   28107173 . S2CID   6885414 .
  150. ^ Глассер А.М., Коллинз Л., Пирсон Дж.Л., Абудайе Х., Ниаура Р.С., Абрамс Д.Б. и др. (февраль 2017 г.). «Обзор электронных систем доставки никотина: систематический обзор» . Американский журнал профилактической медицины . 52 (2): e33–e66. дои : 10.1016/j.amepre.2016.10.036 . ПМЦ   5253272 . ПМИД   27914771 .
  151. ^ Перейти обратно: а б Дикпинигайтис П.В. (декабрь 2017 г.). «Влияние употребления табака и электронных сигарет на чувствительность кашлевого рефлекса». Легочная фармакология и терапия . 47 : 45–48. дои : 10.1016/j.pupt.2017.01.013 . ПМИД   28185897 .
  152. ^ Нойбергер М. (май 2015 г.). «Электронная сигарета: волк в овечьей шкуре». Венский клинический еженедельник . 127 (9–10): 385–387. дои : 10.1007/s00508-015-0753-3 . ПМИД   26230008 . S2CID   10172525 .
  153. ^ Перейти обратно: а б Хесс И.М., Лачиредди К., Капон А. (апрель 2016 г.). «Систематический обзор рисков для здоровья от пассивного воздействия паров электронных сигарет» . Исследования и практика общественного здравоохранения . 26 (2). дои : 10.17061/phrp2621617 . ПМИД   27734060 .
  154. ^ Маринак К., Холмс CB, Кинг Б.А., Промофф Дж., Баннелл Р., Макафи Т. (декабрь 2014 г.). «Законы штата, запрещающие продажу несовершеннолетним и использование электронных систем доставки никотина в помещении — США, ноябрь 2014 г.» . ММВР. Еженедельный отчет о заболеваемости и смертности . 63 (49): 1145–1150. ПМЦ   4584536 . ПМИД   25503916 .
  155. ^ Перейти обратно: а б с д и ж Липпи Дж., Фавалоро Э.Дж., Мески Т., Маттиуцци С., Борги Л., Сервеллин Г. (февраль 2014 г.). «Электронные сигареты и сердечно-сосудистый риск: за пределами науки и мистики» . Семинары по тромбозам и гемостазу . 40 (1): 60–65. дои : 10.1055/s-0033-1363468 . ПМИД   24343348 .
  156. ^ Перейти обратно: а б с д и «Право ВОЗ призывать к регулированию электронных сигарет» . Всемирная федерация легких. 26 августа 2014 г.
  157. ^ Перейти обратно: а б с д Новак Д., Йоррес Р.А., Рютер Т. (май 2014 г.). «Электронные сигареты: профилактика, здоровье легких и зависимость» . Немецкий международный медицинский журнал . 111 (20): 349–355. дои : 10.3238/arztebl.2014.0349 . ПМК   4047602 . ПМИД   24882626 .
  158. ^ Хан М.С., Хатиб Ф., Ахтар Дж., Хан З., Лал А., Холодович В. и др. (март 2018 г.). «Организация пневмонии, связанной с употреблением электронных сигарет: описание случая и обзор литературы». Клинический респираторный журнал . 12 (3): 1295–1299. дои : 10.1111/crj.12775 . ПМИД   29392888 . S2CID   4316261 .
  159. ^ Даутценберг Б., Адлер М., Гарелик Д., Лубриу Ж.Ф., Матерн Г., Пайффер Г. и др. (февраль 2017 г.). «Практические рекомендации по электронным сигаретам для практикующих врачей и других специалистов здравоохранения. Заявление французского эксперта, 2016 г.». Ревю респираторных заболеваний . 34 (2): 155–164. дои : 10.1016/j.rmr.2017.01.001 . ПМИД   28189437 .
  160. ^ Перейти обратно: а б Макнил 2015 , с. 65.
  161. ^ Перейти обратно: а б с д и Берстин I (январь 2014 г.). «Вглядываясь сквозь туман: систематический обзор того, что химический состав примесей в электронных сигаретах говорит нам о рисках для здоровья» . BMC Общественное здравоохранение . 14 (1): 18. дои : 10.1186/1471-2458-14-18 . ПМЦ   3937158 . ПМИД   24406205 .
  162. ^ «Электронные сигареты: безопасный способ бросить курить?» . НПС MedicineWise. 11 июня 2014 г. Архивировано из оригинала 19 марта 2017 г.
  163. ^ Чепмен 2015 , с. 1.
  164. ^ Перейти обратно: а б с «Белая книга: Электронные сигареты в помещении» (PDF) . Американская ассоциация промышленной гигиены. 19 октября 2014 г. Архивировано из оригинала (PDF) 25 января 2017 г. . Проверено 18 августа 2016 г.
  165. ^ Перейти обратно: а б с д и ж г час я дж к л Клапп П.В., Ясперс I (октябрь 2017 г.). «Электронные сигареты: их составляющие и потенциальная связь с астмой» . Текущие отчеты об аллергии и астме . 17 (11): 79. дои : 10.1007/s11882-017-0747-5 . ПМЦ   5995565 . ПМИД   28983782 .
  166. ^ Перейти обратно: а б Страттон 2018 , с. Пассивное воздействие аэрозоля электронных сигарет, синтез; 84.
  167. ^ Грана Р.А., Линг П.М. (апрель 2014 г.). « Курильная революция»: контент-анализ сайтов розничной торговли электронными сигаретами» . Американский журнал профилактической медицины . 46 (4): 395–403. дои : 10.1016/j.amepre.2013.12.010 . ПМЦ   3989286 . ПМИД   24650842 .
  168. ^ ВОЗ 2016 , с. 4.
  169. ^ «Электронные сигареты не доказывают, что они помогают бросить курить, — говорит BMA» . Британская медицинская ассоциация . 30 января 2013 г. Архивировано из оригинала 26 февраля 2013 г.
  170. ^ Перейти обратно: а б с д и ж г Англия LJ, Bunnell RE, Pechacek TF, Tong VT, McAfee TA (август 2015 г.). «Никотин и развивающийся человек: забытый элемент в дебатах об электронных сигаретах» . Американский журнал профилактической медицины . 49 (2): 286–293. дои : 10.1016/j.amepre.2015.01.015 . ПМЦ   4594223 . ПМИД   25794473 .
  171. ^ Перейти обратно: а б «План FDA по регулированию табака и никотина» . Управление по контролю за продуктами и лекарствами США. 15 марта 2018 г. Общественное достояние В данную статью включен текст из этого источника, находящегося в свободном доступе .
  172. ^ Страттон 2018 , с. Резюме, Заключение 14-2.; 9.
  173. ^ Перейти обратно: а б Мео С.А., Аль Асири С.А. (2014). «Влияние курения электронных сигарет на здоровье человека» (PDF) . Европейский обзор медицинских и фармакологических наук . 18 (21): 3315–3319. ПМИД   25487945 .
  174. ^ Перейти обратно: а б с Бияни С., Деркай CS (март 2017 г.). «Электронные сигареты: обновленная информация для отоларинголога». Международный журнал детской оториноларингологии . 94 : 14–16. дои : 10.1016/j.ijporl.2016.12.027 . ПМИД   28167004 .
  175. ^ Перейти обратно: а б с д Браун CJ, Ченг JM (май 2014 г.). «Электронные сигареты: характеристики продукта и особенности дизайна» . Контроль над табаком . 23 (Приложение 2): ii4–i10. doi : 10.1136/tobaccocontrol-2013-051476 . ПМЦ   3995271 . ПМИД   24732162 .
  176. ^ «Отчет государственного санитарного врача об электронных сигаретах: угроза здоровью общества» (PDF) . Департамент общественного здравоохранения Калифорнии. Январь 2015. Общественное достояние В данную статью включен текст из этого источника, находящегося в свободном доступе .
  177. ^ Перейти обратно: а б Фрей Л.Т., Чемпионат мира по Тилбургу (февраль 2016 г.). «Упаковка, защищенная от детей, для жидкостей для электронных сигарет: обзор законодательства штата США» . Американский журнал общественного здравоохранения . 106 (2): 266–268. дои : 10.2105/AJPH.2015.302957 . ПМЦ   4815607 . ПМИД   26691114 .
  178. ^ Перейти обратно: а б с д Пеппер Дж. К., Брюэр NT (сентябрь 2014 г.). «Осведомленность, использование, реакции и убеждения об электронной системе доставки никотина (электронная сигарета): систематический обзор» . Контроль над табаком . 23 (5): 375–384. doi : 10.1136/tobaccocontrol-2013-051122 . ПМК   4520227 . ПМИД   24259045 .
  179. ^ Перейти обратно: а б с д и Модесто-Лоу В., Альварадо К. (сентябрь 2017 г.). «Электронные сигареты... Крутые ли они? Разговоры с подростками об электронных сигаретах». Клиническая педиатрия . 56 (10): 947–952. дои : 10.1177/0009922817705188 . ПМИД   28443340 . S2CID   44423931 .
  180. ^ Перейти обратно: а б с д и ж «Вы вейпинге? Посмотрите эти советы о том, как хранить жидкости для электронных сигарет в недоступном для детей месте» . Управление по контролю за продуктами и лекарствами США. 2 мая 2018 г. Общественное достояние В данную статью включен текст из этого источника, находящегося в свободном доступе .
  181. ^ Перейти обратно: а б с «FDA и FTC принимают меры против компаний, которые вводят детей в заблуждение с помощью жидкостей для электронных сигарет, напоминающих детские коробки с соком, конфеты и печенье» . Управление по контролю за продуктами и лекарствами США. 1 мая 2018 года. Общественное достояние В данную статью включен текст из этого источника, находящегося в свободном доступе .
  182. ^ «Жидкости для электронных сигарет, ошибочно маркированные или рекламируемые как пищевые продукты» . Управление по контролю за продуктами и лекарствами США. 25 сентября 2018 г. Общественное достояние В данную статью включен текст из этого источника, находящегося в свободном доступе .
  183. ^ Перейти обратно: а б с «Компании прекращают продажу жидкостей для электронных сигарет с маркировкой или рекламой, напоминающей детские продукты, после предупреждений FDA и FTC» . Управление по контролю за продуктами и лекарствами США. 23 августа 2018 г. Общественное достояние В данную статью включен текст из этого источника, находящегося в свободном доступе .
  184. ^ Перейти обратно: а б с д и Буди Ф.Б., Патель С., Буди А., Чан С. (декабрь 2019 г.). «Ацетат витамина Е как вероятная причина острых заболеваний, связанных с вейпингом» . Куреус . 11 (12): е6350. дои : 10.7759/cureus.6350 . ПМК   6952050 . ПМИД   31938636 . В эту статью включен текст Ф. Брайана Боуди, Сони Патель, Авы Боуди и Конни Чан, доступный по лицензии CC BY 3.0 .
  185. ^ Майер Б. (январь 2014 г.). «Сколько никотина убивает человека? Прослеживая общепринятую смертельную дозу до сомнительных экспериментов над собой в девятнадцатом веке» . Архив токсикологии . 88 (1): 5–7. Бибкод : 2014ArTox..88....5M . дои : 10.1007/s00204-013-1127-0 . ПМЦ   3880486 . ПМИД   24091634 .
  186. ^ Макнил 2015 , с. 63.
  187. ^ Эгглстон В., Накка Н., Сторк К.М., Марраффа Дж.М. (ноябрь 2016 г.). «Детская смерть после непреднамеренного воздействия жидкого никотина для электронной сигареты». Клиническая токсикология . 54 (9): 890–891. дои : 10.1080/15563650.2016.1207081 . ПМИД   27383772 . S2CID   21378412 .
  188. ^ «Отравление электронными сигаретами среди малышей резко возросло на 1500% за 3 года» . Yahoo! Новости . 9 мая 2016 г.
  189. ^ Перейти обратно: а б Макнил, 2015 , стр. 67–68.
  190. ^ «Электронные сигареты» . Управление терапевтическими товарами. 30 марта 2015 г.
  191. ^ Перейти обратно: а б с Жиру С., де Чезаре М., Берте А., Варле В., Конча-Лозано Н., Фаврат Б. (август 2015 г.). «Электронные сигареты: обзор новых тенденций в употреблении каннабиса» . Международный журнал экологических исследований и общественного здравоохранения . 12 (8): 9988–10008. дои : 10.3390/ijerph120809988 . ПМЦ   4555324 . ПМИД   26308021 . В эту статью включен текст Кристиана Жиру, Мариангелы де Чезаре, Орели Берте, Винсента Варле, Николя Конча-Лозано и Бернара Фаврата, доступный по лицензии CC BY 4.0 .
  192. ^ Гордон Т., Кэри Э., Ребули М.Э., Эскобар Ю.Н., Джасперс И., Чен Л.К. (06.01.2022). «Токсикология электронных сигарет» . Ежегодный обзор фармакологии и токсикологии . 62 : 301–322. doi : 10.1146/annurev-pharmtox-042921-084202 . ISSN   0362-1642 . ПМЦ   9386787 . ПМИД   34555289 .
  193. ^ Боакье Э., Эль-Шахави О., Обисесан О., Дзайе О., Осей А.Д., Эрхабор Дж. и др. (17 октября 2022 г.). «Обратная связь между распространенностью курения каннабиса в штате и повреждением легких, связанным с употреблением электронных сигарет или вейпинговых продуктов» . ПЛОС ОДИН . 17 (10): e0276187. Бибкод : 2022PLoSO..1776187B . дои : 10.1371/journal.pone.0276187 . ISSN   1932-6203 . ПМЦ   9576092 . ПМИД   36251673 .
  194. ^ Перейти обратно: а б с д и ж г Беновиц Н.Л., Фрайман Дж.Б. (август 2017 г.). «Сердечно-сосудистые эффекты электронных сигарет» . Обзоры природы. Кардиология . 14 (8): 447–456. дои : 10.1038/nrcardio.2017.36 . ПМК   5519136 . ПМИД   28332500 .
  195. ^ Перейти обратно: а б «Брифинг по исследованиям рака в Великобритании: электронные сигареты» (PDF) . Исследования рака, Великобритания. Май 2014.
  196. ^ Перейти обратно: а б Орр М.С. (май 2014 г.). «Электронные сигареты в США: сводка имеющихся токсикологических данных и предложения на будущее» . Контроль над табаком . 23 (Приложение 2): ii18–ii22. doi : 10.1136/tobaccocontrol-2013-051474 . ПМЦ   3995288 . ПМИД   24732158 .
  197. ^ Рахман М.А., Ханн Н., Уилсон А., Уорролл-Картер Л. (2014). «Электронные сигареты: модели употребления, влияние на здоровье, использование при отказе от курения и вопросы регулирования» . Заболевания, вызванные табакокурением . 12 (1): 21. дои : 10.1186/1617-9625-12-21 . ПМК   4350653 . ПМИД   25745382 .
  198. ^ Сюй Ю, Го Ю, Лю К, Лю З, Ван Х (2016). «Осведомленность, использование и восприятие вреда электронных сигарет среди взрослых: метаанализ наблюдательных исследований» . ПЛОС ОДИН . 11 (11): e0165938. Бибкод : 2016PLoSO..1165938X . дои : 10.1371/journal.pone.0165938 . ПМК   5115669 . ПМИД   27861501 .
  199. ^ Уайлдер 2016 , с. 87.
  200. ^ «Электронные сигареты будут регулироваться как лекарства» . Национальная служба здравоохранения . 12 июня 2013 года. Архивировано из оригинала 17 декабря 2015 года . Проверено 21 ноября 2014 г.
  201. ^ Перейти обратно: а б с д и ж Джерри Дж. М., Коллинз ГБ, Стрим Д. (август 2015 г.). «Электронные сигареты: можно ли рекомендовать пациентам?» . Медицинский журнал Кливлендской клиники . 82 (8): 521–526. дои : 10.3949/ccjm.82a.14054 . ПМИД   26270431 .
  202. ^ Перейти обратно: а б СГУС 2014 , с. 116.
  203. ^ СГУС 2014 , с. 115.
  204. ^ Шаал С., Челлаппан С.П. (январь 2014 г.). «Никотин-опосредованная пролиферация клеток и прогрессирование опухолей при раке, связанном с курением» . Молекулярные исследования рака . 12 (1): 14–23. дои : 10.1158/1541-7786.MCR-13-0541 . ПМЦ   3915512 . ПМИД   24398389 .
  205. ^ Перейти обратно: а б с Коллако Дж. М., Драммонд М.Б., МакГрат-Морроу С.А. (февраль 2015 г.). «Употребление электронных сигарет и воздействие на педиатрическую популяцию» . JAMA Педиатрия . 169 (2): 177–182. doi : 10.1001/jamapediatrics.2014.2898 . ПМЦ   5557497 . ПМИД   25546699 .
  206. ^ Мравец Б., Тибенский М., Хорватова Л., Бабал П. (февраль 2020 г.). «Электронные сигареты и риск рака» . Исследования по профилактике рака . 13 (2): 137–144. дои : 10.1158/1940-6207.CAPR-19-0346 . ПМИД   31619443 .
  207. ^ Перейти обратно: а б с д и ж г час я дж к л м н тот п д р с т в v В х и С аа аб и объявление но из в ах есть также и аль являюсь а Саннер Т., Гримсруд Т.К. (2015). «Никотин: канцерогенность и влияние на реакцию на лечение рака - обзор» . Границы онкологии . 5 : 196. doi : 10.3389/fonc.2015.00196 . ПМЦ   4553893 . ПМИД   26380225 . В эту статью включен текст , доступный по лицензии CC BY 4.0 .
  208. ^ Страттон 2018 , с. Резюме, Заключение 10-4.; 8.
  209. ^ Перейти обратно: а б с д и ж г час Орельяна-Барриос М.А., Пейн Д., Малки З., Ньюджент К. (июль 2015 г.). «Электронные сигареты — повествовательный обзор для врачей» . Американский медицинский журнал . 128 (7): 674–681. дои : 10.1016/j.amjmed.2015.01.033 . ПМИД   25731134 .
  210. ^ Перейти обратно: а б ВОЗ 2016 , с. 3.
  211. ^ Флах С., Маниам П., Маникавасагам Дж. (сентябрь 2019 г.). «Электронные сигареты и рак головы и шеи: систематический обзор современной литературы» . Клиническая отоларингология . 44 (5): 749–756. дои : 10.1111/coa.13384 . ПМИД   31148389 . S2CID   171094189 .
  212. ^ Кнорст М.М., Бенедетто И.Г., Хоффмайстер М.К., Газзана М.Б. (октябрь 2014 г.). «Электронная сигарета: новая сигарета 21 века?» . Журнал Brasileiro de Pneumologia . 40 (5): 564–572. дои : 10.1590/S1806-37132014000500013 . ПМЦ   4263338 . ПМИД   25410845 .
  213. ^ Перейти обратно: а б с д и ж Химстра П.С., Балс Р. (октябрь 2016 г.). «Фундаментальная наука об электронных сигаретах: оценка в клеточной культуре и на моделях in vivo» . Респираторные исследования . 17 (1): 127. дои : 10.1186/s12931-016-0447-z . ПМК   5055681 . ПМИД   27717371 . В эту статью включен текст , доступный по лицензии CC BY 4.0 .
  214. ^ «Заявление WMA об электронных сигаретах и ​​других электронных системах доставки никотина» . Всемирная медицинская ассоциация. Октябрь 2012.
  215. ^ Арнольд С. (сентябрь 2014 г.). «Вейпинг и здоровье: что мы знаем об электронных сигаретах?» . Перспективы гигиены окружающей среды . 122 (9): А244–А249. дои : 10.1289/ehp.122-A244 . ПМК   4154203 . ПМИД   25181730 . Общественное достояние В данную статью включен текст из этого источника, находящегося в свободном доступе .
  216. ^ Пизингер С., Дёссинг М. (декабрь 2014 г.). «Систематический обзор воздействия электронных сигарет на здоровье» . Профилактическая медицина . 69 : 248–260. дои : 10.1016/j.ypmed.2014.10.009 . ПМИД   25456810 .
  217. ^ Перейти обратно: а б Кан З., Сигел М. (февраль 2011 г.). «Электронные сигареты как стратегия снижения вреда в борьбе против табака: шаг вперед или повторение ошибок прошлого?» . Журнал политики общественного здравоохранения . 32 (1): 16–31. дои : 10.1057/jphp.2010.41 . ПМИД   21150942 .
  218. ^ Перейти обратно: а б «FDA предупреждает о рисках для здоровья, связанных с электронными сигаретами» . Управление по контролю за продуктами и лекарствами США. 27 сентября 2017 г. Архивировано из оригинала 1 ноября 2017 г.
  219. ^ Перейти обратно: а б с «Сводка результатов: лабораторный анализ электронных сигарет, проведенный FDA» . Управление по контролю за продуктами и лекарствами США. 22 апреля 2014 г. Архивировано из оригинала 29 июня 2017 г. Общественное достояние В данную статью включен текст из этого источника, находящегося в свободном доступе .
  220. ^ Отчет государственного санитарного врача об электронных сигаретах.
  221. ^ Перейти обратно: а б Алавси Ф., Нур Р., Прабху С. (август 2015 г.). «Являются ли электронные сигареты воротами к курению или способом бросить курить?». Британский стоматологический журнал . 219 (3): 111–115. дои : 10.1038/sj.bdj.2015.591 . ПМИД   26271862 . S2CID   24120636 .
  222. ^ Перейти обратно: а б Макнил 2018 , с. 162.
  223. ^ Папефстатиу Э., Стилиану М., Агапиу А. (май 2019 г.). «Основные и побочные эффекты электронных сигарет». Журнал экологического менеджмента . 238 : 10–17. Бибкод : 2019JEnvM.238...10P . дои : 10.1016/j.jenvman.2019.01.030 . ПМИД   30836280 . S2CID   73462201 .
  224. ^ Перейти обратно: а б с д и ж г час я дж Цай Х, Ван С (октябрь 2017 г.). «Графический обзор: окислительно-восстановительная темная сторона электронных сигарет; воздействие окислителей и проблемы общественного здравоохранения» . Редокс-биология . 13 : 402–406. дои : 10.1016/j.redox.2017.05.013 . ПМК   5493817 . ПМИД   28667909 .
  225. ^ «Известные и вероятные канцерогены для человека» .
  226. ^ Перейти обратно: а б с д и ж г час я дж Бекки К., Утияма С., Охта К., Инаба Ю., Накагоме Х., Кунугита Н. (октябрь 2014 г.). «Карбонильные соединения, образующиеся из электронных сигарет» . Международный журнал экологических исследований и общественного здравоохранения . 11 (11): 11192–11200. дои : 10.3390/ijerph111111192 . ПМК   4245608 . ПМИД   25353061 .
  227. ^ Перейти обратно: а б с Шик С.Ф., Блаунт BC, Джейкоб П., Салиба Н.А. , Бернерт Дж.Т., Эль Хеллани А. и др. (сентябрь 2017 г.). «Биомаркеры воздействия новых и появляющихся табачных изделий» . Американский журнал физиологии. Клеточная и молекулярная физиология легких . 313 (3): L425–L452. дои : 10.1152/ajplung.00343.2016 . ПМЦ   5626373 . ПМИД   28522563 .
  228. ^ Перейти обратно: а б с д Рамоа КП, Айсенберг Т, Сахингур СЭ (октябрь 2017 г.). «Растущая популярность курения табака через кальян и использования электронных сигарет: последствия для здоровья полости рта» . Журнал периодонтальных исследований . 52 (5): 813–823. дои : 10.1111/jre.12458 . ПМК   5585021 . ПМИД   28393367 .
  229. ^ Страттон 2018 , с. Резюме, 4.
  230. ^ Перейти обратно: а б с д и Заре С., Немати М., Чжэн Ю. (2018). «Систематический обзор предпочтений потребителей в отношении характеристик электронных сигарет: вкус, концентрация никотина и тип» . ПЛОС ОДИН . 13 (3): e0194145. Бибкод : 2018PLoSO..1394145Z . дои : 10.1371/journal.pone.0194145 . ПМЦ   5854347 . ПМИД   29543907 . В эту статью включен текст , доступный по лицензии CC BY 4.0 .
  231. ^ Перейти обратно: а б с Бурк Л., Баулд Л., Буллен С., Камбербэтч М., Джованнуччи Э., Ислами Ф. и др. (июнь 2017 г.). «Электронные сигареты и урологическое здоровье: совместный обзор токсикологии, эпидемиологии и потенциальных рисков». Европейская урология . 71 (6): 915–923. дои : 10.1016/j.eururo.2016.12.022 . hdl : 1893/24937 . ПМИД   28073600 .
  232. ^ Перейти обратно: а б с Уайлдер 2016 , с. 82.
  233. ^ Наик П., Кукулло Л. (октябрь 2015 г.). «Патобиология табакокурения и сосудисто-нервных расстройств: развязанные нити и альтернативные продукты» . Жидкости и барьеры ЦНС . 12 (1): 25. дои : 10.1186/s12987-015-0022-x . ПМЦ   4628383 . ПМИД   26520792 .
  234. ^ Перейти обратно: а б Страттон 2018 , с. Другие токсиканты, кофеин; 197.
  235. ^ Перейти обратно: а б Макнил 2018 , с. 19.
  236. ^ Страттон 2018 , с. Воздействие ароматизаторов, 175.
  237. ^ Перейти обратно: а б с Янковски М., Брожек Г., Лоусон Дж., Скочиньски С., Зейда Дж.Е. (май 2017 г.). «Электронное курение: новая проблема общественного здравоохранения?» . Международный журнал профессиональной медицины и гигиены окружающей среды . 30 (3): 329–344. дои : 10.13075/ijomeh.1896.01046 . ПМИД   28481369 .
  238. ^ Перейти обратно: а б Бонилла А., Блэр А.Дж., Аламро С.М., Уорд Р.А., Фельдман М.Б., Дутко Р.А. и др. (сентябрь 2019 г.). «Рецидивирующий спонтанный пневмоторакс и курение сигарет у 18-летнего мужчины: описание случая и обзор литературы» . Журнал отчетов о медицинских случаях . 13 (1): 283. дои : 10.1186/s13256-019-2215-4 . ПМК   6732835 . ПМИД   31495337 . В эту статью включен текст , доступный по лицензии CC BY 4.0 .
  239. ^ Перейти обратно: а б с д и ж г Шилдс П.Г., Берман М., Браски Т.М., Фройденхайм Дж.Л., Мате Э., МакЭлрой Дж.П. и др. (август 2017 г.). «Обзор легочной токсичности электронных сигарет в контексте курения: акцент на воспалении» . Эпидемиология рака, биомаркеры и профилактика . 26 (8): 1175–1191. doi : 10.1158/1055-9965.EPI-17-0358 . ПМК   5614602 . ПМИД   28642230 .
  240. ^ Страттон 2018 , с. ВКУСЫ, 172.
  241. ^ Перейти обратно: а б Редакция (7 июля 2016 г.). «Попкорн для легких: опасный риск ароматизированных электронных сигарет» . Американская ассоциация легких.
  242. ^ Макнил 2018 , с. 159.
  243. ^ Фарсалинос К.Е., Ле Уэзек Дж. (2015). «Регулирование перед лицом неопределенности: данные об электронных системах доставки никотина (электронные сигареты)» . Политика управления рисками и здравоохранения . 8 : 157–167. дои : 10.2147/RMHP.S62116 . ПМК   4598199 . ПМИД   26457058 .
  244. ^ Фарсалинос К.Е., Гиллман И.Г., Хехт СС, Полоса Р., Торнбург Дж. (16 ноября 2016 г.). Аналитическая оценка электронных сигарет: от содержимого к профилям воздействия химических веществ и частиц . Эльзевир Наука. п. 22. ISBN  978-0-12-811242-7 .
  245. ^ Перейти обратно: а б с д Беновиц Н.Л., Бербанк AD (август 2016 г.). «Сердечно-сосудистая токсичность никотина: последствия использования электронных сигарет» . Тенденции сердечно-сосудистой медицины . 26 (6): 515–523. дои : 10.1016/j.tcm.2016.03.001 . ПМЦ   4958544 . ПМИД   27079891 .
  246. ^ Дханд Р. (июль 2017 г.). «Ингаляционная лекарственная терапия 2016: обзор года» . Респираторный уход . 62 (7): 978–996. doi : 10.4187/respcare.05624 . ПМИД   28559466 .
  247. ^ Перейти обратно: а б Шрауфнагель Д.Е., Блази Ф., Драммонд М.Б., Лам Д.К., Латиф Э., Розен М.Дж. и др. (сентябрь 2014 г.). «Электронные сигареты. Заявление о позиции форума международных респираторных обществ» . Американский журнал респираторной медицины и медицины интенсивной терапии . 190 (6): 611–618. doi : 10.1164/rccm.201407-1198PP . ПМИД   25006874 . S2CID   43763340 .
  248. ^ Перейти обратно: а б с д Страттон 2018 , с. Другие токсиканты, фармацевтические препараты; 197.
  249. ^ Перейти обратно: а б Хуан С.Дж., Сюй Ю.М., Лау А.Т. (июнь 2018 г.). «Электронная сигарета: недавнее обновление ее токсического воздействия на человека». Журнал клеточной физиологии . 233 (6): 4466–4478. дои : 10.1002/jcp.26352 . ПМИД   29215738 . S2CID   3556795 .
  250. ^ Макнил 2018 , с. 160.
  251. ^ Перейти обратно: а б с д Зборовская Ю. (февраль 2017 г.). «Электронные сигареты и отказ от курения: пособие для врачей-онкологов». Клинический журнал сестринского дела в онкологии . 21 (1): 54–63. дои : 10.1188/17.CJON.54-63 . ПМИД   28107337 . S2CID   206992720 .
  252. ^ Перейти обратно: а б Борн Х., Перский М., Краус Д.Х., Пэн Р., Амин М.Р., Брански Р.К. (июль 2015 г.). «Электронные сигареты: учебник для врачей». Отоларингология – хирургия головы и шеи . 153 (1): 5–14. дои : 10.1177/0194599815585752 . ПМИД   26002957 . S2CID   10199442 .
  253. ^ Перейти обратно: а б с Макнил 2015 , с. 77.
  254. ^ Макнил 2018 , с. 158.
  255. ^ Страттон 2018 , с. Характеристики устройств для электронных сигарет, 56.
  256. ^ Макнил 2015 , стр. 77–78.
  257. ^ Подробный список ссылок расположен на отдельной странице с изображением .
  258. ^ Перейти обратно: а б Лахенмайер Д.В., Рем Дж. (январь 2015 г.). «Сравнительная оценка риска употребления алкоголя, табака, каннабиса и других запрещенных наркотиков с использованием подхода предела воздействия» . Научные отчеты . 5 : 8126. Бибкод : 2015NatSR...5E8126L . дои : 10.1038/srep08126 . ПМЦ   4311234 . ПМИД   25634572 .
  259. ^ Дэвис Р., Ризвани В., Банерджи С., Ковач М., Хаура Э., Коппола Д. и др. (октябрь 2009 г.). «Никотин способствует росту опухоли и метастазированию на мышиных моделях рака легких» . ПЛОС ОДИН . 4 (10): е7524. Бибкод : 2009PLoSO...4.7524D . дои : 10.1371/journal.pone.0007524 . ПМЦ   2759510 . ПМИД   19841737 .
  260. ^ Ким Дж. Х., Патель С. (2017). «Стоит ли дискриминировать курящих пациентов? Систематический обзор литературы о влиянии употребления табака при хирургии стопы и голеностопного сустава». Журнал хирургии стопы и голеностопного сустава . 56 (3): 594–599. дои : 10.1053/j.jfas.2017.02.006 . ПМИД   28476393 . S2CID   38374357 .
  261. ^ Перейти обратно: а б Шиво М., Авдалович М.В., Мурин С. (февраль 2014 г.). «Несигаретный табак и легкие». Клинические обзоры по аллергии и иммунологии . 46 (1): 34–53. дои : 10.1007/s12016-013-8372-0 . ПМИД   23673789 . S2CID   23626872 .
  262. ^ Марсо А., Саймон Н. (март 2016 г.). «Уровень никотина и котинина в электронной сигарете: обзор» . Международный журнал токсикологии . 35 (2): 179–185. дои : 10.1177/1091581815618935 . ПМИД   26681385 . S2CID   12969599 .
  263. ^ Страттон 2018 , с. Резюме, Заключение 8-2.; 7.
  264. ^ Макнил 2018 , с. 55.
  265. ^ Макнил 2018 , с. 57.
  266. ^ Болд К.В., Сассман С., О'Мэлли С.С., Грана Р., Фулдс Дж., Фишбейн Х. и др. (апрель 2018 г.). «Измерение зависимости от электронных сигарет: первоначальное руководство» . Аддиктивное поведение . 79 : 213–218. дои : 10.1016/j.addbeh.2017.11.015 . ПМК   5807200 . ПМИД   29174664 .
  267. ^ "Дом" . freemaxvaporusa.com .
  268. ^ "Дом" . Horizonvaporusa.com . Архивировано из оригинала 11 октября 2020 г. Проверено 6 октября 2020 г.
  269. ^ Перейти обратно: а б Wyman AE, Hines SE (апрель 2018 г.). «Новая информация о профессиональных заболеваниях легких, вызванных металлами». Современное мнение в области аллергии и клинической иммунологии . 18 (2): 73–79. doi : 10.1097/ACI.0000000000000420 . ПМИД   29337701 . S2CID   3613573 .
  270. ^ Перейти обратно: а б Каур Дж., Пинкстон Р., Маклемор Б., Дорси В.К., Батра С. (март 2018 г.). «Иммунологическая и токсикологическая оценка риска электронных сигарет» . Европейский респираторный обзор . 27 (147): 170119. doi : 10.1183/16000617.0119-2017 . ПМЦ   9489161 . ПМИД   29491036 .
  271. ^ Броддус В.К., Мейсон Р.К., Эрнст Дж.Д., Кинг-младший Т.Э., Лазарус С.К., Мюррей Дж.Ф. и др. (17 марта 2015 г.). Учебник Мюррея и Наделя по респираторной медицине . Elsevier Науки о здоровье. п. 820. ИСБН  978-0-323-26193-7 .
  272. ^ Кроули Р.А. (апрель 2015 г.). «Электронные системы доставки никотина: краткое изложение политического документа Американского колледжа врачей». Анналы внутренней медицины . 162 (8): 583–584. дои : 10.7326/M14-2481 . ПМИД   25894027 . S2CID   207538290 .
  273. ^ Цзя-Ю Дж., Гош М., Хоет П. (октябрь 2023 г.). «Связь между воздействием металлов из компонентов электронных сигарет и конечными точками токсичности: обзор литературы» . Нормативная токсикология и фармакология . 144 (105488). дои : 10.1016/j.yrtph.2023.105488 . ПМИД   37657743 .
  274. ^ Шредер М.Дж., Хоффман AC (май 2014 г.). «Электронные сигареты и клиническая фармакология никотина» . Контроль над табаком . 23 (Приложение 2): ii30–ii35. doi : 10.1136/tobaccocontrol-2013-051469 . ПМЦ   3995273 . ПМИД   24732160 .
  275. ^ «Данные исследования FDA 2009: оценка электронных сигарет» (PDF) . Управление по санитарному надзору за качеством пищевых продуктов и медикаментов (США) — центр оценки и исследования лекарственных средств . 4 мая 2009 г.
  276. ^ Чон В.Т., Чо Х.К., Ли Х.Р., Сон К.Х., Лим Х.Б. (2019). «Сравнение содержания табачных алкалоидов и специфичных для табака нитрозаминов в табачных изделиях, не подвергаемых нагреванию, до и после образования аэрозоля». Ингаляционная токсикология . 30 (13–14): 527–533. дои : 10.1080/08958378.2019.1572840 . ПМИД   30741569 . S2CID   73436802 .
  277. ^ Ди Маттео В., Пьеруччи М., Ди Джованни Дж., Бениньо А., Эспозито Э. (2007). «Нейробиологические основы фармакотерапии никотиновой зависимости». Текущий фармацевтический дизайн . 13 (12): 1269–1284. дои : 10.2174/138161207780618920 . PMID   17504235 .
  278. ^ Перейти обратно: а б с д и ж «Электронные сигареты (Е-сигареты)» . Национальный институт по борьбе со злоупотреблением наркотиками. Март 2018. Общественное достояние В данную статью включен текст из этого источника, находящегося в свободном доступе .
  279. ^ Голуб Дж.С., Сами Р.Н. (октябрь 2015 г.). «Предотвращение или уменьшение осложнений, связанных с курением, в отологической и невротологической хирургии». Современное мнение в области отоларингологии и хирургии головы и шеи . 23 (5): 334–340. дои : 10.1097/MOO.0000000000000184 . ПМИД   26339963 . S2CID   205830424 .
  280. ^ Макнил 2018 , с. 58.
  281. ^ Перейти обратно: а б с Страттон 2018 , с. Минорные алкалоиды табака, 193.
  282. ^ Перейти обратно: а б с Мишра А., Чатурведи П., Датта С., Синукумар С., Джоши П., Гарг А. (2015). «Вредное воздействие никотина» . Индийский журнал медицинской и детской онкологии . 36 (1): 24–31. дои : 10.4103/0971-5851.151771 . ПМЦ   4363846 . ПМИД   25810571 .
  283. ^ Тода Н., Тода Х. (декабрь 2010 г.). «Регуляция кровотока, опосредованная оксидом азота, под влиянием курения и никотина». Европейский журнал фармакологии . 649 (1–3): 1–13. дои : 10.1016/j.ejphar.2010.09.042 . ПМИД   20868673 .
  284. ^ Перейти обратно: а б с Гарсия А.Н., Саллум И.М. (октябрь 2015 г.). «Полисомнографические нарушения сна при употреблении никотина, кофеина, алкоголя, кокаина, опиоидов и каннабиса: целенаправленный обзор». Американский журнал о зависимостях . 24 (7): 590–598. дои : 10.1111/ajad.12291 . ПМИД   26346395 . S2CID   22703103 .
  285. ^ Ирландский Лос-Анджелес, Клайн CE, Ганн Х.Э., Буйсс DJ, Холл MH (август 2015 г.). «Роль гигиены сна в укреплении общественного здоровья: обзор эмпирических данных» . Обзоры медицины сна . 22 : 23–36. дои : 10.1016/j.smrv.2014.10.001 . ПМК   4400203 . ПМИД   25454674 .
  286. ^ Сикейра LM (январь 2017 г.). «Никотин и табак как вещества, вызывающие злоупотребление детьми и подростками» . Педиатрия . 139 (1): e20163436. дои : 10.1542/пед.2016-3436 . ПМИД   27994114 .
  287. ^ Перейти обратно: а б Страттон 2018 , с. Другие эффекты никотина, сердечно-сосудистые эффекты; 111.
  288. ^ Моррис П.Б., Ференс Б.А., Джахангир Э., Фельдман Д.Н., Райан Дж.Дж., Бахрами Х. и др. (сентябрь 2015 г.). «Сердечно-сосудистые эффекты воздействия сигаретного дыма и электронных сигарет: клинические перспективы профилактики сердечно-сосудистых заболеваний. Руководящий совет секции и советы ранней карьеры Американского колледжа кардиологов» . Журнал Американского колледжа кардиологов . 66 (12): 1378–1391. дои : 10.1016/j.jacc.2015.07.037 . ПМИД   26383726 .
  289. ^ Перейти обратно: а б с Маддату Дж., Андерсон-Баукум Э., Эванс-Молина С. (июнь 2017 г.). «Курение и риск диабета 2 типа» . Трансляционные исследования . 184 : 101–107. дои : 10.1016/j.trsl.2017.02.004 . ПМЦ   5429867 . ПМИД   28336465 .
  290. ^ Перейти обратно: а б с Ганем А., Абдулджаббар Т., Акрам З., Вохра Ф., Келлесарян С.В., Джавед Ф. (апрель 2017 г.). «Систематический обзор и метаанализ доклинических исследований по оценке влияния никотина на остеоинтеграцию». Международный журнал челюстно-лицевой хирургии . 46 (4): 496–502. дои : 10.1016/j.ijom.2016.12.003 . ПМИД   28189374 . S2CID   3480398 .
  291. ^ Перейти обратно: а б Гринберг Дж. М., Карбаллоса К. М., Чунг Х. С. (сентябрь 2017 г.). «Краткий обзор: пагубные последствия курения сигарет и употребления никотина, а также функция мезенхимальных стволовых клеток и последствия для клеточной терапии» . Трансляционная медицина стволовых клеток . 6 (9): 1815–1821. дои : 10.1002/sctm.17-0060 . ПМЦ   5689746 . ПМИД   28696009 .
  292. ^ Ли П.Н., Фарисс М.В. (апрель 2017 г.). «Систематический обзор возможных серьезных неблагоприятных последствий никотинзаместительной терапии для здоровья» . Архив токсикологии . 91 (4): 1565–1594. Бибкод : 2017ArTox..91.1565L . дои : 10.1007/s00204-016-1856-y . ПМК   5364244 . ПМИД   27699443 .
  293. ^ Гомес Дж.П., Ватад А., Шенфельд Ю. (февраль 2018 г.). «Никотин и аутоиммунитет: цветок лотоса в табаке». Фармакологические исследования . 128 : 101–109. дои : 10.1016/j.phrs.2017.10.005 . ПМИД   29051105 . S2CID   46745841 .
  294. ^ Мачаалани Р., Чен Х. (март 2018 г.). «Нейротрофический фактор головного мозга (BDNF), его тирозинкиназный рецептор B (TrkB) и никотин». Нейротоксикология . 65 : 186–195. Бибкод : 2018NeuTx..65..186M . дои : 10.1016/j.neuro.2018.02.014 . hdl : 10453/122789 . ПМИД   29499216 . S2CID   3688206 .
  295. ^ Гловер М., Брейер Б.Х., Баулд Л. (ноябрь 2017 г.). «Может ли вейпинг стать новым оружием в битве за Арденн?». Исследования никотина и табака . 19 (12): 1536–1540. дои : 10.1093/ntr/ntw278 . hdl : 1893/26149 . ПМИД   27798086 . S2CID   3799963 .
  296. ^ Смит Т.Т., Рупрехт Л.Е., Денлингер-Апте Р.Л., Уикс Дж.Дж., Панас Р.С., Донни Э.К. и др. (сентябрь 2017 г.). «Исследования на животных по снижению никотина: текущие данные и пробелы в исследованиях» . Исследования никотина и табака . 19 (9): 1005–1015. дои : 10.1093/ntr/ntx077 . ПМЦ   5896531 . ПМИД   28379511 .
  297. ^ Перейти обратно: а б Юань М., Кросс С.Дж., Лафлин С.Э., Лесли Ф.М. (август 2015 г.). «Никотин и мозг подростка» . Журнал физиологии . 593 (16): 3397–3412. дои : 10.1113/JP270492 . ПМК   4560573 . ПМИД   26018031 .
  298. ^ Перейти обратно: а б Чепмен 2015 , с. 6.
  299. ^ «Людям, желающим бросить курить, следует проконсультироваться со своим терапевтом» . Факультет общественного здравоохранения. Июль 2014 г. Архивировано из оригинала 15 июня 2016 г.
  300. ^ Коллако Дж. М., McGrath-Morrow SA (апрель 2018 г.). «Электронные сигареты: воздействие и использование среди детского населения» . Журнал аэрозольной медицины и доставки легочных лекарств . 31 (2): 71–77. дои : 10.1089/jamp.2017.1418 . ПМЦ   5915214 . ПМИД   29068754 .
  301. ^ «Заявление о позиции в отношении электронных сигарет [EC] или электронных систем доставки никотина [ENDS]» (PDF) . Международный союз борьбы с туберкулезом и болезнями легких. Октябрь 2013. с. 8. Архивировано из оригинала (PDF) 5 марта 2016 г. Проверено 21 ноября 2014 г.
  302. ^ Макнил 2018 , с. 12.
  303. ^ Фогель WH (март 2016 г.). «Электронные сигареты: так ли они безопасны, как думает общественность?» . Журнал передового практикующего врача в области онкологии . 7 (2): 235–240. дои : 10.6004/jadpro.2016.7.2.9 . ПМК   5226315 . ПМИД   28090372 .
  304. ^ Страттон 2018 , с. Итог, 7.
  305. ^ Перейти обратно: а б Харрелл П.Т., Симмонс В.Н., Корреа Дж.Б., Падья Т.А., Брэндон Т.Х. (сентябрь 2014 г.). «Электронные системы доставки никотина («электронные сигареты»): обзор безопасности и эффективности отказа от курения» . Отоларингология – хирургия головы и шеи . 151 (3): 381–393. дои : 10.1177/0194599814536847 . ПМЦ   4376316 . ПМИД   24898072 .
  306. ^ «Заявление о позиции электронных сигарет» . Совет по раку Австралии, Фонд сердца Австралии.
  307. ^ Чун Л.Ф., Моазед Ф., Калфи К.С. , Мэттэй М.А., Готтс Дж.Е. (август 2017 г.). «Легочная токсичность электронных сигарет» . Американский журнал физиологии. Клеточная и молекулярная физиология легких . 313 (2): L193–L206. дои : 10.1152/ajplung.00071.2017 . ПМК   5582932 . ПМИД   28522559 .
  308. ^ Страттон 2018 , с. Уязвимые/восприимчивые группы населения, астма и другие респираторные заболевания детского возраста; 448.
  309. ^ Страттон 2018 , с. Уязвимые/восприимчивые группы населения, муковисцидоз; 448.
  310. ^ Макнил 2018 , с. 174.
  311. ^ Генри Т.С., Клигерман С.Дж., Раптис К.А., Манн Х., Секрист Дж.В., Канн Дж.П. (март 2020 г.). «Результаты визуализации повреждения легких, связанного с вейпингом». АЖР. Американский журнал рентгенологии . 214 (3): 498–505. дои : 10.2214/AJR.19.22251 . ПМИД   31593518 . S2CID   203985885 .
  312. ^ Перейти обратно: а б Кришнасами, вице-президент (2020 г.). «Обновление: характеристики общенациональной вспышки употребления электронных сигарет или вейпинга и повреждений легких, связанных с употреблением продуктов — США, август 2019 г. – январь 2020 г.» . ММВР. Еженедельный отчет о заболеваемости и смертности . 69 (3): 90–94. doi : 10.15585/mmwr.mm6903e2 . ISSN   0149-2195 . ПМЦ   7367698 . ПМИД   31971931 .
  313. ^ Перейти обратно: а б «Тяжелое легочное заболевание, связанное с использованием электронных сигарет» . Центры по контролю и профилактике заболеваний. 30 августа 2019 г. Общественное достояние В данную статью включен текст из этого источника, находящегося в свободном доступе .
  314. ^ Перейти обратно: а б с Хаммонд Д. (сентябрь 2019 г.). «Вспышка легочных заболеваний, связанных с вейпингом». БМЖ . 366 :l5445. дои : 10.1136/bmj.l5445 . ПМИД   31506254 . S2CID   202553770 .
  315. ^ «Житель Квебека подтвердил первый случай заболевания, связанного с вейпингом, в Канаде» . CBC.ca. ​27 сентября 2019 г.
  316. ^ Перейти обратно: а б с д и ж г час я дж Здоровье, Управление CDC по курению и (03 августа 2021 г.). «Курение и употребление табака; электронные сигареты». Центры по контролю и профилактике заболеваний . Проверено 23 июля 2024 г.
  317. ^ Лейден Дж. Э., Гинай И., Прай И., Кимбалл А., Слой М., Тенфорд М.В. и др. (март 2020 г.). «Легочные заболевания, связанные с употреблением электронных сигарет в Иллинойсе и Висконсине – итоговый отчет» . Медицинский журнал Новой Англии . 382 (10): 903–916. дои : 10.1056/NEJMoa1911614 . ПМИД   31491072 .
  318. ^ Готтс Дж. Э., Йордт С. Е., МакКоннелл Р., Тарран Р. (сентябрь 2019 г.). «Каковы респираторные эффекты электронных сигарет?» . БМЖ . 366 :l5275. дои : 10.1136/bmj.l5275 . ПМК   7850161 . ПМИД   31570493 .
  319. ^ Перейти обратно: а б Кинг Б.А., Джонс СМ, Болдуин Г.Т., Брисс П.А. (февраль 2020 г.). «EVALI и эпидемия вейпинга среди молодежи – последствия для общественного здравоохранения» . Медицинский журнал Новой Англии . 382 (8): 689–691. дои : 10.1056/NEJMp1916171 . ПМК   7122126 . ПМИД   31951683 .
  320. ^ Перейти обратно: а б Маррокко А., Сингх Д., Кристиани, округ Колумбия, Демокриту П. (16 марта 2022 г.). «Острое повреждение легких, связанное с вейпингом электронных сигарет (EVALI): состояние науки и потребности в будущих исследованиях» . Критические обзоры по токсикологии . 52 (3): 188–220. дои : 10.1080/10408444.2022.2082918 . ISSN   1040-8444 . ПМЦ   9716650 . ПМИД   35822508 .
  321. ^ «Для государственных, местных, территориальных и племенных департаментов здравоохранения | Электронные сигареты | Курение и употребление табака | CDC» . archive.cdc.gov . 14 июня 2024 г. Проверено 30 июля 2024 г.
  322. ^ Перейти обратно: а б Ассоциация АЛ. «Повреждение легких, связанное с употреблением электронных сигарет или вейпинга (EVALI)» . www.lung.org . Проверено 30 июля 2024 г.
  323. ^ Перейти обратно: а б с Смит М.Л., Готвей М.Б., Кротти Александр Л.Е., Харири Л.П. (январь 2021 г.). «Повреждения легких, связанные с вейпингом» . Архив Вирхова . 478 (1): 81–88. дои : 10.1007/s00428-020-02943-0 . ISSN   0945-6317 . ПМК   7590536 . ПМИД   33106908 .
  324. ^ «Стенограмма телебрифинга от 6 сентября 2019 г.: исследование легочных заболеваний среди людей, употребляющих электронные сигареты» . Центры по контролю и профилактике заболеваний . 6 сентября 2019 г. Общественное достояние В данную статью включен текст из этого источника, находящегося в свободном доступе .
  325. ^ Перейти обратно: а б с д «Заболевания, вызванные вейпингом: потребители могут защитить себя, избегая продуктов для вейпинга, содержащих тетрагидроканнабинол (ТГК)» . Управление по санитарному надзору за качеством пищевых продуктов и медикаментов США . 6 сентября 2019 г. Общественное достояние В данную статью включен текст из этого источника, находящегося в свободном доступе .
  326. ^ Эллингтон С., Сальваторе П.П., Ко Дж., Дэниэлсон М., Ким Л., Сайрус А. и др. (январь 2020 г.). «Обновление: продукт, употребление психоактивных веществ и демографические характеристики госпитализированных пациентов в ходе общенациональной вспышки употребления электронных сигарет или вейпинга и травм легких, связанных с употреблением продуктов — США, август 2019 г. — январь 2020 г.» . ММВР. Еженедельный отчет о заболеваемости и смертности . 69 (2): 44–49. doi : 10.15585/mmwr.mm6902e2 . ПМК   6973348 . ПМИД   31945038 .
  327. ^ «Стенограмма телебрифинга Центра по контролю и профилактике заболеваний: обновленная информация о травмах легких, связанных с использованием электронных сигарет или вейпингом» . Центры по контролю и профилактике заболеваний. 8 ноября 2019 г. Общественное достояние В данную статью включен текст из этого источника, находящегося в свободном доступе .
  328. ^ Перейти обратно: а б с д Диксон Э.Дж. (10 сентября 2019 г.). «Три компании вызваны в суд по делу о заболевании Weed Vape» . Роллинг Стоун .
  329. ^ Голдман Х (9 сентября 2019 г.). «Куомо сигнализирует о ужесточении в Нью-Йорке в отношении вейпинга после болезней» . Новости Блумберга .
  330. ^ Вергано Д (30 августа 2019 г.). «Вспышка заболевания легких, вызванного вейпингом, теперь распространилась на 25 штатов» . Новости БаззФида .
  331. ^ Джойнер А (18 августа 2019 г.). «CDC исследует заболевания легких, связанные с употреблением электронных сигарет» . Рейтер .
  332. ^ Маррокко А., Сингх Д., Кристиани, округ Колумбия, Демокриту П. (март 2022 г.). «Острое повреждение легких, связанное с вейпингом электронных сигарет (EVALI): состояние науки и потребности в будущих исследованиях» . Критические обзоры по токсикологии . 52 (3): 188–220. дои : 10.1080/10408444.2022.2082918 . ISSN   1040-8444 . ПМЦ   9716650 . ПМИД   35822508 .
  333. ^ Сиддики Т.Дж., Рашид А.М., Сиддики А.К., Анвер А., Усман М.С., Сахи Х. и др. (сентябрь 2023 г.). «Сердечно-сосудистые эффекты электронных сигарет: систематический обзор и метаанализ» . Современные проблемы кардиологии . 48 (9): 101748. doi : 10.1016/j.cpcardiol.2023.101748 . ПМИД   37088177 .
  334. ^ Цзун Х, Ху Цзы, Ли В (20 февраля 2024 г.). «Электронные сигареты и сердечно-сосудистые заболевания: эпидемиологическая и биологическая связь» . Европейский журнал физиологии . 476 (6): 875–888. дои : 10.1007/s00424-024-02925-0 . ПМЦ   11139732 . ПМИД   38376568 .
  335. ^ Скотсимара Г., Антонопулос А.С., Ойконому Э., Сиасос Г., Иоакеимидис Н., Цаламандрис С. и др. (июль 2019 г.). «Сердечно-сосудистые эффекты электронных сигарет: систематический обзор и метаанализ». Европейский журнал профилактической кардиологии . 26 (11): 1219–1228. дои : 10.1177/2047487319832975 . ПМИД   30823865 . S2CID   73506976 .
  336. ^ Кнура М, Драгон Дж, Лабузек К, Окопень Б (январь 2018 г.). «[Влияние использования электронных сигарет на функцию эндотелия и прогрессирование атеросклероза]». Польский Меркуриуш Лекарски . 44 (259): 26–30. ПМИД   29374420 .
  337. ^ Чепмен 2015 , с. 5.
  338. ^ Перейти обратно: а б Неллури Б., Мерфи К., Мукадам Ф., Мукадам М. (март 2016 г.). «Современная литература о влиянии электронных сигарет на сердечно-сосудистую систему». Будущая кардиология . 12 (2): 167–179. дои : 10.2217/fca.15.83 . ПМИД   26916427 .
  339. ^ Оукс Дж. М., Фукс Р. М., Гарднер Дж. Д., Лазартиг Э., Юэ Х (ноябрь 2018 г.). «Никотин и ренин-ангиотензиновая система» . Американский журнал физиологии. Регуляторная, интегративная и сравнительная физиология . 315 (5): Р895–Р906. дои : 10.1152/ajpregu.00099.2018 . ПМК   6295500 . ПМИД   30088946 .
  340. ^ Тернер-младший (ноябрь 2009 г.). «Барьерная функция слизистой оболочки кишечника в норме и патологии» . Обзоры природы Иммунология . 9 (11): 799–809. дои : 10.1038/nri2653 . ISSN   1474-1741 . ПМИД   19855405 .
  341. ^ Тернер-младший (ноябрь 2009 г.). «Барьерная функция слизистой оболочки кишечника в норме и патологии» . Обзоры природы Иммунология . 9 (11): 799–809. дои : 10.1038/nri2653 . ISSN   1474-1741 . ПМИД   19855405 .
  342. ^ Осима Т., Мива Х. (август 2016 г.). «Барьерная функция слизистой оболочки желудка и заболевания» . Журнал гастроэнтерологии . 51 (8): 768–778. дои : 10.1007/s00535-016-1207-z . ISSN   1435-5922 . ПМИД   27048502 .
  343. ^ Шарма А., Ли Дж., Фонсека А.Г., Мошенски А., Котари Т., Сайед И.М. и др. (06.01.2021). «Электронные сигареты нарушают кишечный барьер и вызывают воспаление» . iScience . 24 (2): 102035. Бибкод : 2021iSci...24j2035S . дои : 10.1016/j.isci.2021.102035 . ISSN   2589-0042 . ПМЦ   7841355 . ПМИД   33537654 .
  344. ^ Осима Т., Мива Х. (август 2016 г.). «Барьерная функция слизистой оболочки желудка и заболевания» . Журнал гастроэнтерологии . 51 (8): 768–778. дои : 10.1007/s00535-016-1207-z . ISSN   1435-5922 . ПМИД   27048502 .
  345. ^ Шарма А., Ли Дж., Фонсека А.Г., Мошенски А., Котари Т., Сайед И.М. и др. (06.01.2021). «Электронные сигареты нарушают кишечный барьер и вызывают воспаление» . iScience . 24 (2): 102035. Бибкод : 2021iSci...24j2035S . дои : 10.1016/j.isci.2021.102035 . ISSN   2589-0042 . ПМЦ   7841355 . ПМИД   33537654 .
  346. ^ Шарма А., Ли Дж., Фонсека А., Кротти-Александр Л., Гош П. (19 февраля 2021 г.). «Электронные сигареты нарушают кишечный барьер и вызывают воспаление» . iScience . 24 (2). Бибкод : 2021iSci...24j2035S . дои : 10.1016/j.isci.2021.102035 . ПМЦ   7841355 . ПМИД   33537654 .
  347. ^ Перейти обратно: а б Дебнат М., Дебнат Д., Сингх П., Верт Ю., Нукала В. (24 июля 2022 г.). «Влияние электронных сигарет на желудочно-кишечную систему» . Куреус . 14 (7): e27210. дои : 10.7759/cureus.27210 . ISSN   2168-8184 . ПМЦ   9322142 . ПМИД   35903484 .
  348. ^ Пан Ю, Ли М, Ли Ф, Лэй Дж, Чжан Т (сентябрь 2023 г.). «Предварительное исследование жидкости для электронных сигарет и аэрозоля нейроповедения C. elegans» . Экологический интернационал . 179 : 108180. Бибкод : 2023EnInt.17908180P . дои : 10.1016/j.envint.2023.108180 . ISSN   1873-6750 . ПМИД   37690220 .
  349. ^ Лопес-Охеда В., Херли Р.А. (январь 2024 г.). «Вейпинг и мозг: влияние электронных сигарет и жидкостей для электронных сигарет» . Журнал нейропсихиатрии и клинических нейронаук . 36 (1): А5–5. дои : 10.1176/appi.neuropsych.20230184 . ISSN   0895-0172 . ПМИД   38226910 .
  350. ^ Лопес-Охеда В., Херли Р.А. (январь 2024 г.). «Вейпинг и мозг: влияние электронных сигарет и жидкостей для электронных сигарет» . Журнал нейропсихиатрии и клинических нейронаук . 36 (1): А5–5. дои : 10.1176/appi.neuropsych.20230184 . ISSN   0895-0172 . ПМИД   38226910 .
  351. ^ Хелдт Н.А., Селига А., Уинфилд М., Гаджгейт С., Райхенбах Н., Ю. X. и др. (август 2020 г.). «Воздействие электронных сигарет нарушает целостность гематоэнцефалического барьера и способствует нейровоспалению» . Мозг, поведение и иммунитет . 88 : 363–380. дои : 10.1016/j.bbi.2020.03.034 . ISSN   1090-2139 . ПМЦ   7899242 . ПМИД   32243899 .
  352. ^ Лопес-Охеда В., Херли Р.А. (январь 2024 г.). «Вейпинг и мозг: влияние электронных сигарет и жидкостей для электронных сигарет» . Журнал нейропсихиатрии и клинических нейронаук . 36 (1): А5–5. дои : 10.1176/appi.neuropsych.20230184 . ISSN   0895-0172 . ПМИД   38226910 .
  353. ^ Хелдт Н.А., Селига А., Уинфилд М., Гаджгейт С., Райхенбах Н., Ю. X. и др. (август 2020 г.). «Воздействие электронных сигарет нарушает целостность гематоэнцефалического барьера и способствует нейровоспалению» . Мозг, поведение и иммунитет . 88 : 363–380. дои : 10.1016/j.bbi.2020.03.034 . ISSN   1090-2139 . ПМЦ   7899242 . ПМИД   32243899 .
  354. ^ Лопес-Охеда В., Херли Р.А. (январь 2024 г.). «Вейпинг и мозг: влияние электронных сигарет и жидкостей для электронных сигарет» . Журнал нейропсихиатрии и клинических нейронаук . 36 (1): А5–5. дои : 10.1176/appi.neuropsych.20230184 . ISSN   0895-0172 . ПМИД   38226910 .
  355. ^ Страттон 2018 , с. Резюме, Заключение 12-1.; 9.
  356. ^ Перейти обратно: а б Джавед Ф., Келлесарян С.В., Сундар И.К., Романос Г.Е., Рахман I (ноябрь 2017 г.). «Последние новости об аэрозолях электронных сигарет и воздействии вдыхаемого никотина на ткани пародонта и легких» . Заболевания полости рта . 23 (8): 1052–1057. дои : 10.1111/odi.12652 . ПМЦ   5545167 . ПМИД   28168771 .
  357. ^ Чаффи Б.В., Коуч И.Т., Райдер М.И. (июнь 2016 г.). «Пациент с пародонтологическим заболеванием, употребляющий табак: роль практикующего стоматолога в отказе от табакокурения и лечении заболеваний пародонта» . Пародонтология 2000 . 71 (1): 52–64. дои : 10.1111/прд.12120 . ПМК   4842013 . ПМИД   27045430 .
  358. ^ Перейти обратно: а б Султан А.С., Джессри М., Фарах К.С. (март 2021 г.). «Электронные системы доставки никотина: последствия для здоровья полости рта и риск рака полости рта». Журнал патологии полости рта и медицины . 50 (3): 316–322. дои : 10.1111/jop.12810 . ПМИД   30507043 . S2CID   54527046 .
  359. ^ Висконти М.Дж., Ашак К.А. (октябрь 2019 г.). «Дерматологические проявления, связанные с использованием электронных сигарет». Журнал Американской академии дерматологии . 81 (4): 1001–1007. дои : 10.1016/j.jaad.2019.03.088 . ПМИД   30965061 . S2CID   106409405 .
  360. ^ «Электронные сигареты (Вейпинг)» , «От матери ребенку» | Информационные бюллетени , Брентвуд (Теннесси): Организация специалистов по тератологической информации (OTIS), 1994 г., PMID   35951787 , получено 30 июля 2024 г.
  361. ^ CDC (20 мая 2024 г.). «Электронные сигареты и беременность» . Здоровье матери и ребенка . Проверено 31 июля 2024 г.
  362. ^ «Электронные сигареты (Вейпинг)» , «От матери ребенку» | Информационные бюллетени , Брентвуд (Теннесси): Организация специалистов по тератологической информации (OTIS), 1994 г., PMID   35951787 , получено 30 июля 2024 г.
  363. ^ «Электронные сигареты (Вейпинг)» , «От матери ребенку» | Информационные бюллетени , Брентвуд (Теннесси): Организация специалистов по тератологической информации (OTIS), 1994 г., PMID   35951787 , получено 30 июля 2024 г.
  364. ^ «Электронные сигареты (Вейпинг)» , «От матери ребенку» | Информационные бюллетени , Брентвуд (Теннесси): Организация специалистов по тератологической информации (OTIS), 1994 г., PMID   35951787 , получено 30 июля 2024 г.
  365. ^ «Электронные сигареты (Вейпинг)» , «От матери ребенку» | Информационные бюллетени , Брентвуд (Теннесси): Организация специалистов по тератологической информации (OTIS), 1994 г., PMID   35951787 , получено 30 июля 2024 г.
  366. ^ Хаек П., Пржуль Д., Песола Ф., Гриффитс С., Уолтон Р., МакРобби Х. и др. (май 2022 г.). «Электронные сигареты по сравнению с никотиновыми пластырями для отказа от курения во время беременности: рандомизированное контролируемое исследование» . Природная медицина . 28 (5): 958–964. дои : 10.1038/s41591-022-01808-0 . ISSN   1546-170Х . ПМЦ   9117131 . ПМИД   35577966 .
  367. ^ «Отказ от курения табака у взрослых, включая беременных: меры вмешательства» . Рабочая группа США по профилактическим услугам . 19 января 2021 г. . Проверено 31 июля 2024 г.
  368. ^ «Электронные сигареты (Вейпинг)» , «От матери ребенку» | Информационные бюллетени , Брентвуд (Теннесси): Организация специалистов по тератологической информации (OTIS), 1994 г., PMID   35951787 , получено 30 июля 2024 г.
  369. ^ Кэрролл Чепмен С.Л., Ву LT (июль 2014 г.). «Распространенность электронных сигарет и корреляция их употребления среди подростков и взрослых: обзор и сравнение» . Журнал психиатрических исследований . 54 : 43–54. doi : 10.1016/j.jpsychires.2014.03.005 . ПМК   4055566 . ПМИД   24680203 .
  370. ^ Чен И.Л., Тодд И., Fairclough LC (сентябрь 2019 г.). «Иммунологические и патологические эффекты электронных сигарет» . Базовая и клиническая фармакология и токсикология . 125 (3): 237–252. дои : 10.1111/bcpt.13225 . ПМИД   30861614 .
  371. ^ Перейти обратно: а б Сапру С., Вардхан М., Ли Q, Го Ю, Ли Х, Саксена Д. (октябрь 2020 г.). «Употребление электронных сигарет в США: причины употребления, восприятие и влияние на здоровье» . BMC Общественное здравоохранение . 20 (1): 1518. doi : 10.1186/s12889-020-09572-x . ПМЦ   7545933 . ПМИД   33032554 .
  372. ^ Шнайдер С., Диль К. (май 2016 г.). «Вейпинг как катализатор курения? Первоначальная модель начала употребления электронных сигарет и перехода к курению табака среди подростков». Исследования никотина и табака . 18 (5): 647–653. дои : 10.1093/ntr/ntv193 . ПМИД   26386472 .
  373. ^ Периклеус Е.П., Стейропулос П., Параскакис Е., Константинидис Т.К., Нена Е. (2018). «Употребление электронных сигарет подростками: обзор литературы и перспективы на будущее» . Границы общественного здравоохранения . 6 : 86. дои : 10.3389/fpubh.2018.00086 . ПМЦ   5879739 . ПМИД   29632856 . В эту статью включен текст Эванфии П. Периклеус, Пасхалиса Стейропулоса, Эммануила Параскакиса, Теодороса К. Константинидиса и Евангелии Нены, доступный по лицензии CC BY 4.0 .
  374. ^ Макнил 2018 , с. 190.
  375. ^ МакКаббин А., Фаллин-Беннетт А., Барнетт Дж., Эшфорд К. (февраль 2017 г.). «Восприятие и использование электронных сигарет во время беременности» . Исследования в области санитарного просвещения . 32 (1): 22–32. дои : 10.1093/her/cyw059 . ПМЦ   5914445 . ПМИД   28158490 .
  376. ^ Макнил 2018 , с. 189.
  377. ^ Перейти обратно: а б Маккосленд К., Мэйкок Б., Ливер Т., Дженси Дж. (февраль 2019 г.). «Сообщения, представленные в рекламных акциях и обсуждениях в социальных сетях, связанных с электронными сигаретами: обзор объема» . Журнал медицинских интернет-исследований . 21 (2): e11953. дои : 10.2196/11953 . ПМК   6379814 . ПМИД   30720440 . В эту статью включен текст Калии Маккосланд, Брюса Мэйкока, Тамы Ливер и Джонин Дженси, доступный по лицензии CC BY 4.0 .
  378. ^ Макнил 2018 , с. 20.
  379. ^ Перейти обратно: а б с «Употребление электронных сигарет среди курильщиков замедляется по мере увеличения восприятия вреда» . ЭШ Великобритания . 22 мая 2015 г.
  380. ^ Макнил 2015 , с. 79.
  381. ^ Макнил 2015 , стр. 6, 11, 79–80.
  382. ^ Фракол М., Дорфман Р., Джейнс Л., Кулкарни С., Бетке К., Хансен Н. и др. (ноябрь 2017 г.). «Хирургическое воздействие электронных сигарет: клинический случай и обзор современной литературы» . Архив пластической хирургии . 44 (6): 477–481. дои : 10.5999/aps.2017.00087 . ПМК   5801784 . ПМИД   29069879 .
  383. ^ Каменга Д.Р., Кляйн Дж.Д. (июль 2016 г.). «Расстройства, связанные с употреблением табака» . Детские и подростковые психиатрические клиники Северной Америки . 25 (3): 445–460. дои : 10.1016/j.chc.2016.02.003 . ПМЦ   4920978 . ПМИД   27338966 .
  384. ^ Корреа Дж.Б., Ариэль И., Мензи Н.С., Брэндон Т.Х. (февраль 2017 г.). «Документирование появления электронных систем доставки никотина как революционной технологии в науке о никотине и табаке» . Аддиктивное поведение . 65 : 179–184. дои : 10.1016/j.addbeh.2016.10.021 . ПМК   5140675 . ПМИД   27816664 .
  385. ^ Макки М. (ноябрь 2014 г.). «Электронные сигареты: глядя сквозь дымовую завесу» . Последипломный медицинский журнал . 90 (1069): 607–609. doi : 10.1136/postgradmedj-2014-133029 . ПМИД   25294933 .
  386. ^ Перейти обратно: а б де Андраде М., Ангус К., Гастингс Дж. (сентябрь 2016 г.). «Восприятие подростками электронных сигарет в рамках мероприятий шотландских школ по просвещению по вопросам табакокурения: совместное производство и инновационное участие посредством всплывающего радиопроекта». Перспективы общественного здравоохранения . 136 (5): 288–293. дои : 10.1177/1757913915612109 . ПМИД   26543156 . S2CID   3792825 .
  387. ^ Томашефский А (сентябрь 2016 г.). «Влияние электронных сигарет на здоровье взрослых пользователей: научный систематический обзор литературы». Журнал Американской ассоциации практикующих медсестер . 28 (9): 510–515. дои : 10.1002/2327-6924.12358 . ПМИД   26997487 . S2CID   42900184 .
  388. ^ Макнил 2018 , с. 188.
  389. ^ Вагенер Т.Л., Мейер Э., Тэкетт А.П., Матени Дж.Д., Пехачек Т.Ф. (май 2016 г.). «Предлагаемое сотрудничество против большого табачного производства: точки соприкосновения между сообществом вейпинга и общественным здравоохранением в Соединенных Штатах» . Исследования никотина и табака . 18 (5): 730–736. дои : 10.1093/ntr/ntv241 . ПМК   6959509 . ПМИД   26508399 .
  390. ^ Коллинз Л., Глассер А.М., Абудайе Х., Пирсон Дж.Л., Вилланти AC (январь 2019 г.). «Маркетинг и коммуникация электронных сигарет: как компании, производящие электронные сигареты, продают электронные сигареты, и общественность взаимодействует с информацией об электронных сигаретах» . Исследования никотина и табака . 21 (1): 14–24. дои : 10.1093/ntr/ntx284 . ПМК   6610165 . ПМИД   29315420 .
  391. ^ Перейти обратно: а б Али А.С., Мамикутти Р., Мархазлинда Дж (31 октября 2022 г.). «Связь между вредным и вызывающим привыкание восприятием электронных сигарет и их использованием среди подростков и молодежи — систематический обзор и метаанализ» . Дети . 9 (11): 1678. doi : 10.3390/детей9111678 . ISSN   2227-9067 . ПМЦ   9689130 . ПМИД   36360406 .
  392. ^ Продукты см. (26 июня 2024 г.). «Результаты ежегодного национального опроса молодежи о табаке» . FDA .
  393. ^ Келш С., Оттни А., Янг М., Келли М., Ларсон Р., Сон М. (07.03.2023). «Употребление электронных сигарет молодыми людьми и восприятие риска» . Информация об употреблении табака . 16 :1179173X231161313. дои : 10.1177/1179173X231161313 . ISSN   1179-173Х . ПМЦ   9996725 . ПМИД   36911177 .
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