Nghiện (Vietnamese Wikipedia)

Analysis of information sources in references of the Wikipedia article "Nghiện" in Vietnamese language version.

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abam.net

  • “American Board of Medical Specialties recognizes the new subspecialty of addiction medicine” (PDF). American Board of Addiction Medicine. ngày 14 tháng 3 năm 2016. Bản gốc (PDF) lưu trữ ngày 21 tháng 3 năm 2021. Truy cập ngày 3 tháng 4 năm 2016. Sixteen percent of the non-institutionalized U.S. population age 12 and over – more than 40 million Americans – meets medical criteria for addiction involving nicotine, alcohol or other drugs. This is more than the number of Americans with cancer, diabetes or heart conditions. In 2014, 22.5 million people in the United States needed treatment for addiction involving alcohol or drugs other than nicotine, but only 11.6 percent received any form of inpatient, residential, or outpatient treatment. Of those who do receive treatment, few receive evidence-based care. (There is no information available on how many individuals receive treatment for addiction involving nicotine.)
    Risky substance use and untreated addiction account for one-third of inpatient hospital costs and 20 percent of all deaths in the United States each year, and cause or contribute to more than 100 other conditions requiring medical care, as well as vehicular crashes, other fatal and non-fatal injuries, overdose deaths, suicides, homicides, domestic discord, the highest incarceration rate in the world and many other costly social consequences. The economic cost to society is greater than the cost of diabetes and all cancers combined. Despite these startling statistics on the prevalence and costs of addiction, few physicians have been trained to prevent or treat it.

addictioncenter.com

addictionsandrecovery.org

alcoholrehab.com

apa.org

psycnet.apa.org

archive.org

  • Marlatt GA, Baer JS, Donovan DM, Kivlahan DR (1988). “Addictive behaviors: etiology and treatment”. Annu Rev Psychol. 39: 223–52. doi:10.1146/annurev.ps.39.020188.001255. PMID 3278676.Quản lý CS1: nhiều tên: danh sách tác giả (liên kết)
  • Marlatt GA, Baer JS, Donovan DM, Kivlahan DR (1988). “Addictive behaviors: etiology and treatment”. Annu Rev Psychol. 39: 223–52. doi:10.1146/annurev.ps.39.020188.001255. PMID 3278676.
  • Diamond A (2013). “Executive functions”. Annu Rev Psychol. 64: 135–68. doi:10.1146/annurev-psych-113011-143750. PMC 4084861. PMID 23020641. Core EFs are inhibition [response inhibition (self-control – resisting temptations and resisting acting impulsively) and interference control (selective attention and cognitive inhibition)], working memory, and cognitive flexibility (including creatively thinking "outside the box," seeing anything from different perspectives, and quickly and flexibly adapting to changed circumstances). ... EFs and prefrontal cortex are the first to suffer, and suffer disproportionately, if something is not right in your life. They suffer first, and most, if you are stressed (Arnsten 1998, Liston et al. 2009, Oaten & Cheng 2005), sad (Hirt et al. 2008, von Hecker & Meiser 2005), lonely (Baumeister et al. 2002, Cacioppo & Patrick 2008, Campbell et al. 2006, Tun et al. 2012), sleep deprived (Barnes et al. 2012, Huang et al. 2007), or not physically fit (Best 2010, Chaddock et al. 2011, Hillman et al. 2008). Any of these can cause you to appear to have a disorder of EFs, such as ADHD, when you do not. You can see the deleterious effects of stress, sadness, loneliness, and lack of physical health or fitness at the physiological and neuroanatomical level in prefrontal cortex and at the behavioral level in worse EFs (poorer reasoning and problem solving, forgetting things, and impaired ability to exercise discipline and self-control). ...
    EFs can be improved (Diamond & Lee 2011, Klingberg 2010). ... At any age across the life cycle EFs can be improved, including in the elderly and in infants. There has been much work with excellent results on improving EFs in the elderly by improving physical fitness (Erickson & Kramer 2009, Voss et al. 2011) ... Inhibitory control (one of the core EFs) involves being able to control one's attention, behavior, thoughts, and/or emotions to override a strong internal predisposition or external lure, and instead do what's more appropriate or needed. Without inhibitory control we would be at the mercy of impulses, old habits of thought or action (conditioned responses), and/or stimuli in the environment that pull us this way or that. Thus, inhibitory control makes it possible for us to change and for us to choose how we react and how we behave rather than being unthinking creatures of habit. It doesn't make it easy. Indeed, we usually are creatures of habit and our behavior is under the control of environmental stimuli far more than we usually realize, but having the ability to exercise inhibitory control creates the possibility of change and choice. ... The subthalamic nucleus appears to play a critical role in preventing such impulsive or premature responding (Frank 2006).
  • Kendler KS, Neale MC, Heath AC, Kessler RC, Eaves LJ (tháng 5 năm 1994). “A twin-family study of alcoholism in women”. Am J Psychiatry. 151 (5): 707–15. doi:10.1176/ajp.151.5.707. PMID 8166312.
  • Spear LP (tháng 6 năm 2000). “The adolescent brain and age-related behavioral manifestations”. Neuroscience and Biobehavioral Reviews. 24 (4): 417–63. CiteSeerX 10.1.1.461.3295. doi:10.1016/s0149-7634(00)00014-2. PMID 10817843.
  • Salamone JD (1992). “Complex motor and sensorimotor functions of striatal and accumbens dopamine: involvement in instrumental behavior processes”. Psychopharmacology. 107 (2–3): 160–74. doi:10.1007/bf02245133. PMID 1615120.
  • Rang HP (2003). Pharmacology. Edinburgh: Churchill Livingstone. tr. 596. ISBN 978-0-443-07145-4.

asam.org

doi.org

  • Volkow ND, Koob GF, McLellan AT (tháng 1 năm 2016). “Neurobiologic Advances from the Brain Disease Model of Addiction”. New England Journal of Medicine. 374 (4): 363–371. doi:10.1056/NEJMra1511480. PMC 6135257. PMID 26816013. Rối loạn sử dụng chất: Thuật ngữ chẩn đoán trong phiên bản thứ năm của Cẩm nang chẩn đoán và thống kê rối loạn tâm thần (DSM-5) đề cập đến việc sử dụng rượu hoặc các loại thuốc khác gây suy giảm đáng kể về mặt lâm sàng và chức năng, như các vấn đề về sức khỏe, khuyết tật, và không đáp ứng các trách nhiệm chính tại nơi làm việc, trường học hoặc nhà. Tùy thuộc vào mức độ nghiêm trọng, rối loạn này được phân loại là nhẹ, trung bình hoặc nặng.
    Nghiện: Một thuật ngữ được sử dụng để chỉ giai đoạn rối loạn sử dụng chất nghiêm trọng và mãn tính nhất, trong đó có sự mất tự chủ đáng kể, được chỉ định bằng cách uống thuốc bắt buộc mặc dù muốn ngừng dùng thuốc. Trong DSM-5, thuật ngữ 'nghiện' đồng nghĩa với việc phân loại rối loạn sử dụng chất nghiêm trọng.
  • Angres DH, Bettinardi-Angres K (2008). “The disease of addiction: origins, treatment, and recovery”. Dis Mon. 54 (10): 696–721. doi:10.1016/j.disamonth.2008.07.002. PMID 18790142.
  • Angres DH, Bettinardi-Angres K (tháng 10 năm 2008). “The disease of addiction: origins, treatment, and recovery”. Disease-A-Month. 54 (10): 696–721. doi:10.1016/j.disamonth.2008.07.002. PMID 18790142.
  • Taylor SB, Lewis CR, Olive MF (tháng 2 năm 2013). “The neurocircuitry of illicit psychostimulant addiction: acute and chronic effects in humans”. Subst. Abuse Rehabil. 4: 29–43. doi:10.2147/SAR.S39684. PMC 3931688. PMID 24648786. Initial drug use can be attributed to the ability of the drug to act as a reward (ie, a pleasurable emotional state or positive reinforcer), which can lead to repeated drug use and dependence.8,9 A great deal of research has focused on the molecular and neuroanatomical mechanisms of the initial rewarding or reinforcing effect of drugs of abuse. ... At present, no pharmacological therapy has been approved by the FDA to treat psychostimulant addiction. Many drugs have been tested, but none have shown conclusive efficacy with tolerable side effects in humans.172 ... A new emphasis on larger-scale biomarker, genetic, and epigenetic research focused on the molecular targets of mental disorders has been recently advocated.212 In addition, the integration of cognitive and behavioral modification of circuit-wide neuroplasticity (ie, computer-based training to enhance executive function) may prove to be an effective adjunct-treatment approach for addiction, particularly when combined with cognitive enhancers.198,213–216 Furthermore, in order to be effective, all pharmacological or biologically based treatments for addiction need to be integrated into other established forms of addiction rehabilitation, such as cognitive behavioral therapy, individual and group psychotherapy, behavior-modification strategies, twelve-step programs, and residential treatment facilities.
  • Hammer R, Dingel M, Ostergren J, Partridge B, McCormick J, Koenig BA (ngày 1 tháng 7 năm 2013). “Addiction: Current Criticism of the Brain Disease Paradigm”. AJOB Neuroscience. 4 (3): 27–32. doi:10.1080/21507740.2013.796328. PMC 3969751. PMID 24693488.
  • Heather N, Best D, Kawalek A, Field M, Lewis M, Rotgers F, Wiers RW, Heim D (ngày 4 tháng 7 năm 2018). “Challenging the brain disease model of addiction: European launch of the addiction theory network”. Addiction Research & Theory (bằng tiếng Anh). 26 (4): 249–255. doi:10.1080/16066359.2017.1399659.
  • Heather N (ngày 1 tháng 4 năm 2017). “Q: Is Addiction a Brain Disease or a Moral Failing? A: Neither”. Neuroethics. 10 (1): 115–124. doi:10.1007/s12152-016-9289-0. PMC 5486515. PMID 28725283. Bản gốc lưu trữ ngày 18 tháng 10 năm 2022. Truy cập ngày 25 tháng 7 năm 2020.
  • Satel S, Lilienfeld SO (2014). “Addiction and the brain-disease fallacy”. Frontiers in Psychiatry (bằng tiếng Anh). 4: 141. doi:10.3389/fpsyt.2013.00141. PMC 3939769. PMID 24624096. Bản gốc lưu trữ ngày 25 tháng 7 năm 2020. Truy cập ngày 25 tháng 7 năm 2020.
  • Peele S (tháng 12 năm 2016). “People Control Their Addictions: No matter how much the "chronic" brain disease model of addiction indicates otherwise, we know that people can quit addictions - with special reference to harm reduction and mindfulness”. Addictive Behaviors Reports. 4: 97–101. doi:10.1016/j.abrep.2016.05.003. PMC 5836519. PMID 29511729. Bản gốc lưu trữ ngày 25 tháng 7 năm 2020. Truy cập ngày 25 tháng 7 năm 2020.
  • Morse RM, Flavin DK (1992). “The definition of alcoholism. The Joint Committee of the National Council on Alcoholism and Drug Dependence and the American Society of Addiction Medicine to Study the Definition and Criteria for the Diagnosis of Alcoholism”. JAMA. 268 (8): 1012–4. doi:10.1001/jama.1992.03490080086030. PMID 1501306.
  • Marlatt GA, Baer JS, Donovan DM, Kivlahan DR (1988). “Addictive behaviors: etiology and treatment”. Annu Rev Psychol. 39: 223–52. doi:10.1146/annurev.ps.39.020188.001255. PMID 3278676.Quản lý CS1: nhiều tên: danh sách tác giả (liên kết)
  • Merikangas KR, McClair VL (tháng 6 năm 2012). “Epidemiology of Substance Use Disorders”. Hum. Genet. 131 (6): 779–89. doi:10.1007/s00439-012-1168-0. PMC 4408274. PMID 22543841.
  • Morse RM, Flavin DK (tháng 8 năm 1992). “The definition of alcoholism. The Joint Committee of the National Council on Alcoholism and Drug Dependence and the American Society of Addiction Medicine to Study the Definition and Criteria for the Diagnosis of Alcoholism”. JAMA. 268 (8): 1012–14. doi:10.1001/jama.1992.03490080086030. PMID 1501306.
  • Marlatt GA, Baer JS, Donovan DM, Kivlahan DR (1988). “Addictive behaviors: etiology and treatment”. Annu Rev Psychol. 39: 223–52. doi:10.1146/annurev.ps.39.020188.001255. PMID 3278676.
  • Washburn DA (2016). “The Stroop effect at 80: The competition between stimulus control and cognitive control”. J Exp Anal Behav. 105 (1): 3–13. doi:10.1002/jeab.194. PMID 26781048. Today, arguably more than at any time in history, the constructs of attention, executive functioning, and cognitive control seem to be pervasive and preeminent in research and theory. Even within the cognitive framework, however, there has long been an understanding that behavior is multiply determined, and that many responses are relatively automatic, unattended, contention-scheduled, and habitual. Indeed, the cognitive flexibility, response inhibition, and self-regulation that appear to be hallmarks of cognitive control are noteworthy only in contrast to responses that are relatively rigid, associative, and involuntary.
  • Diamond A (2013). “Executive functions”. Annu Rev Psychol. 64: 135–68. doi:10.1146/annurev-psych-113011-143750. PMC 4084861. PMID 23020641. Core EFs are inhibition [response inhibition (self-control – resisting temptations and resisting acting impulsively) and interference control (selective attention and cognitive inhibition)], working memory, and cognitive flexibility (including creatively thinking "outside the box," seeing anything from different perspectives, and quickly and flexibly adapting to changed circumstances). ... EFs and prefrontal cortex are the first to suffer, and suffer disproportionately, if something is not right in your life. They suffer first, and most, if you are stressed (Arnsten 1998, Liston et al. 2009, Oaten & Cheng 2005), sad (Hirt et al. 2008, von Hecker & Meiser 2005), lonely (Baumeister et al. 2002, Cacioppo & Patrick 2008, Campbell et al. 2006, Tun et al. 2012), sleep deprived (Barnes et al. 2012, Huang et al. 2007), or not physically fit (Best 2010, Chaddock et al. 2011, Hillman et al. 2008). Any of these can cause you to appear to have a disorder of EFs, such as ADHD, when you do not. You can see the deleterious effects of stress, sadness, loneliness, and lack of physical health or fitness at the physiological and neuroanatomical level in prefrontal cortex and at the behavioral level in worse EFs (poorer reasoning and problem solving, forgetting things, and impaired ability to exercise discipline and self-control). ...
    EFs can be improved (Diamond & Lee 2011, Klingberg 2010). ... At any age across the life cycle EFs can be improved, including in the elderly and in infants. There has been much work with excellent results on improving EFs in the elderly by improving physical fitness (Erickson & Kramer 2009, Voss et al. 2011) ... Inhibitory control (one of the core EFs) involves being able to control one's attention, behavior, thoughts, and/or emotions to override a strong internal predisposition or external lure, and instead do what's more appropriate or needed. Without inhibitory control we would be at the mercy of impulses, old habits of thought or action (conditioned responses), and/or stimuli in the environment that pull us this way or that. Thus, inhibitory control makes it possible for us to change and for us to choose how we react and how we behave rather than being unthinking creatures of habit. It doesn't make it easy. Indeed, we usually are creatures of habit and our behavior is under the control of environmental stimuli far more than we usually realize, but having the ability to exercise inhibitory control creates the possibility of change and choice. ... The subthalamic nucleus appears to play a critical role in preventing such impulsive or premature responding (Frank 2006).
  • Olsen CM (tháng 12 năm 2011). “Natural rewards, neuroplasticity, and non-drug addictions”. Neuropharmacology. 61 (7): 1109–22. doi:10.1016/j.neuropharm.2011.03.010. PMC 3139704. PMID 21459101. Functional neuroimaging studies in humans have shown that gambling (Breiter et al, 2001), shopping (Knutson et al, 2007), orgasm (Komisaruk et al, 2004), playing video games (Koepp et al, 1998; Hoeft et al, 2008) and the sight of appetizing food (Wang et al, 2004a) activate many of the same brain regions (i.e., the mesocorticolimbic system and extended amygdala) as drugs of abuse (Volkow et al, 2004). ... Cross-sensitization is also bidirectional, as a history of amphetamine administration facilitates sexual behavior and enhances the associated increase in NAc DA ... As described for food reward, sexual experience can also lead to activation of plasticity-related signaling cascades. The transcription factor delta FosB is increased in the NAc, PFC, dorsal striatum, and VTA following repeated sexual behavior (Wallace et al., 2008; Pitchers et al., 2010b). This natural increase in delta FosB or viral overexpression of delta FosB within the NAc modulates sexual performance, and NAc blockade of delta FosB attenuates this behavior (Hedges et al, 2009; Pitchers et al., 2010b). Further, viral overexpression of delta FosB enhances the conditioned place preference for an environment paired with sexual experience (Hedges et al., 2009). ... In some people, there is a transition from "normal" to compulsive engagement in natural rewards (such as food or sex), a condition that some have termed behavioral or non-drug addictions (Holden, 2001; Grant et al., 2006a). ... In humans, the role of dopamine signaling in incentive-sensitization processes has recently been highlighted by the observation of a dopamine dysregulation syndrome in some patients taking dopaminergic drugs. This syndrome is characterized by a medication-induced increase in (or compulsive) engagement in non-drug rewards such as gambling, shopping, or sex (Evans et al, 2006; Aiken, 2007; Lader, 2008)."Table 1: Summary of plasticity observed following exposure to drug or natural reinforcers Lưu trữ 2021-08-09 tại Wayback Machine"
  • Robison AJ, Nestler EJ (tháng 11 năm 2011). “Transcriptional and epigenetic mechanisms of addiction”. Nat. Rev. Neurosci. 12 (11): 623–37. doi:10.1038/nrn3111. PMC 3272277. PMID 21989194. ΔFosB has been linked directly to several addiction-related behaviors ... Importantly, genetic or viral overexpression of ΔJunD, a dominant negative mutant of JunD which antagonizes ΔFosB- and other AP-1-mediated transcriptional activity, in the NAc or OFC blocks these key effects of drug exposure14,22–24. This indicates that ΔFosB is both necessary and sufficient for many of the changes wrought in the brain by chronic drug exposure. ΔFosB is also induced in D1-type NAc MSNs by chronic consumption of several natural rewards, including sucrose, high fat food, sex, wheel running, where it promotes that consumption14,26–30. This implicates ΔFosB in the regulation of natural rewards under normal conditions and perhaps during pathological addictive-like states.
  • Karila L, Wéry A, Weinstein A, Cottencin O, Petit A, Reynaud M, Billieux J (2014). “Sexual addiction or hypersexual disorder: different terms for the same problem? A review of the literature”. Curr. Pharm. Des. 20 (25): 4012–20. doi:10.2174/13816128113199990619. PMID 24001295. Sexual addiction, which is also known as hypersexual disorder, has largely been ignored by psychiatrists, even though the condition causes serious psychosocial problems for many people. A lack of empirical evidence on sexual addiction is the result of the disease's complete absence from versions of the Diagnostic and Statistical Manual of Mental Disorders. ... Existing prevalence rates of sexual addiction-related disorders range from 3% to 6%. Sexual addiction/hypersexual disorder is used as an umbrella construct to encompass various types of problematic behaviors, including excessive masturbation, cybersex, pornography use, sexual behavior with consenting adults, telephone sex, strip club visitation, and other behaviors. The adverse consequences of sexual addiction are similar to the consequences of other addictive disorders. Addictive, somatic and psychiatric disorders coexist with sexual addiction. In recent years, research on sexual addiction has proliferated, and screening instruments have increasingly been developed to diagnose or quantify sexual addiction disorders. In our systematic review of the existing measures, 22 questionnaires were identified. As with other behavioral addictions, the appropriate treatment of sexual addiction should combine pharmacological and psychological approaches.
  • Pitchers KK, Vialou V, Nestler EJ, Laviolette SR, Lehman MN, Coolen LM (tháng 2 năm 2013). “Natural and drug rewards act on common neural plasticity mechanisms with ΔFosB as a key mediator”. The Journal of Neuroscience. 33 (8): 3434–42. doi:10.1523/JNEUROSCI.4881-12.2013. PMC 3865508. PMID 23426671. Drugs of abuse induce neuroplasticity in the natural reward pathway, specifically the nucleus accumbens (NAc), thereby causing development and expression of addictive behavior. ... Together, these findings demonstrate that drugs of abuse and natural reward behaviors act on common molecular and cellular mechanisms of plasticity that control vulnerability to drug addiction, and that this increased vulnerability is mediated by ΔFosB and its downstream transcriptional targets. ... Sexual behavior is highly rewarding (Tenk et al., 2009), and sexual experience causes sensitized drug-related behaviors, including cross-sensitization to amphetamine (Amph)-induced locomotor activity (Bradley and Meisel, 2001; Pitchers et al., 2010a) and enhanced Amph reward (Pitchers et al., 2010a). Moreover, sexual experience induces neural plasticity in the NAc similar to that induced by psychostimulant exposure, including increased dendritic spine density (Meisel and Mullins, 2006; Pitchers et al., 2010a), altered glutamate receptor trafficking, and decreased synaptic strength in prefrontal cortex-responding NAc shell neurons (Pitchers et al., 2012). Finally, periods of abstinence from sexual experience were found to be critical for enhanced Amph reward, NAc spinogenesis (Pitchers et al., 2010a), and glutamate receptor trafficking (Pitchers et al., 2012). These findings suggest that natural and drug reward experiences share common mechanisms of neural plasticity
  • Beloate LN, Weems PW, Casey GR, Webb IC, Coolen LM (tháng 2 năm 2016). “Nucleus accumbens NMDA receptor activation regulates amphetamine cross-sensitization and deltaFosB expression following sexual experience in male rats”. Neuropharmacology. 101: 154–64. doi:10.1016/j.neuropharm.2015.09.023. PMID 26391065.
  • Meule A, Gearhardt AN (tháng 9 năm 2014). “Food addiction in the light of DSM-5”. Nutrients. 6 (9): 3653–71. doi:10.3390/nu6093653. PMC 4179181. PMID 25230209.
  • Vassoler FM, Sadri-Vakili G (2014). “Mechanisms of transgenerational inheritance of addictive-like behaviors”. Neuroscience. 264: 198–206. doi:10.1016/j.neuroscience.2013.07.064. PMC 3872494. PMID 23920159. However, the components that are responsible for the heritability of characteristics that make an individual more susceptible to drug addiction in humans remain largely unknown given that patterns of inheritance cannot be explained by simple genetic mechanisms (Cloninger et al., 1981; Schuckit et al., 1972). The environment also plays a large role in the development of addiction as evidenced by great societal variability in drug use patterns between countries and across time (UNODC, 2012). Therefore, both genetics and the environment contribute to an individual's vulnerability to become addicted following an initial exposure to drugs of abuse. ...
    The evidence presented here demonstrates that rapid environmental adaptation occurs following exposure to a number of stimuli. Epigenetic mechanisms represent the key components by which the environment can influence genetics, and they provide the missing link between genetic heritability and environmental influences on the behavioral and physiological phenotypes of the offspring.
  • Kendler KS, Neale MC, Heath AC, Kessler RC, Eaves LJ (tháng 5 năm 1994). “A twin-family study of alcoholism in women”. Am J Psychiatry. 151 (5): 707–15. doi:10.1176/ajp.151.5.707. PMID 8166312.
  • Clarke TK, Crist RC, Kampman KM, Dackis CA, Pettinati HM, O'Brien CP, Oslin DW, Ferraro TN, Lohoff FW, Berrettini WH (2013). “Low frequency genetic variants in the μ-opioid receptor (OPRM1) affect risk for addiction to heroin and cocaine”. Neuroscience Letters. 542: 71–75. doi:10.1016/j.neulet.2013.02.018. PMC 3640707. PMID 23454283.
  • Hall FS, Drgonova J, Jain S, Uhl GR (tháng 12 năm 2013). “Implications of genome wide association studies for addiction: are our a priori assumptions all wrong?”. Pharmacology & Therapeutics. 140 (3): 267–79. doi:10.1016/j.pharmthera.2013.07.006. PMC 3797854. PMID 23872493.
  • Lewis M (tháng 10 năm 2018). “Brain Change in Addiction as Learning, Not Disease”. The New England Journal of Medicine. 379 (16): 1551–1560. doi:10.1056/NEJMra1602872. PMID 30332573. Addictive activities are determined neither solely by brain changes nor solely by social conditions... the narrowing seen in addiction takes place within the behavioral repertoire, the social surround, and the brain — all at the same time.
  • Enoch, Mary (2011). “The role of early life stress as a predictor for alcohol and drug dependence”. Psychopharmacology. 214 (1): 17–31. doi:10.1007/s00213-010-1916-6. PMC 3005022. PMID 20596857.
  • Spear LP (tháng 6 năm 2000). “The adolescent brain and age-related behavioral manifestations”. Neuroscience and Biobehavioral Reviews. 24 (4): 417–63. CiteSeerX 10.1.1.461.3295. doi:10.1016/s0149-7634(00)00014-2. PMID 10817843.
  • Catalano RF, Hawkins JD, Wells EA, Miller J, Brewer D (1990). “Evaluation of the effectiveness of adolescent drug abuse treatment, assessment of risks for relapse, and promising approaches for relapse prevention”. The International Journal of the Addictions. 25 (9A–10A): 1085–140. doi:10.3109/10826089109081039. PMID 2131328.
  • Perepletchikova F, Krystal JH, Kaufman J (tháng 11 năm 2008). “Practitioner review: adolescent alcohol use disorders: assessment and treatment issues”. Journal of Child Psychology and Psychiatry, and Allied Disciplines. 49 (11): 1131–54. doi:10.1111/j.1469-7610.2008.01934.x. PMC 4113213. PMID 19017028.
  • Yuan TF, Li A, Sun X, Ouyang H, Campos C, Rocha NB, Arias-Carrión O, Machado S, Hou G, So KF (2015). “Transgenerational Inheritance of Paternal Neurobehavioral Phenotypes: Stress, Addiction, Ageing and Metabolism”. Mol. Neurobiol. 53 (9): 6367–76. doi:10.1007/s12035-015-9526-2. PMID 26572641.
  • Vassoler FM, Sadri-Vakili G (2014). “Mechanisms of transgenerational inheritance of addictive-like behaviors”. Neuroscience. 264: 198–206. doi:10.1016/j.neuroscience.2013.07.064. PMC 3872494. PMID 23920159. However, the components that are responsible for the heritability of characteristics that make an individual more susceptible to drug addiction in humans remain largely unknown given that patterns of inheritance cannot be explained by simple genetic mechanisms (Cloninger et al., 1981; Schuckit et al., 1972). The environment also plays a large role in the development of addiction as evidenced by great societal variability in drug use patterns between countries and across time (UNODC, 2012). Therefore, both genetics and the environment contribute to an individual's vulnerability to become addicted following an initial exposure to drugs of abuse. ...
    The evidence presented here demonstrates that rapid environmental adaptation occurs following exposure to a number of stimuli. Epigenetic mechanisms represent the key components by which the environment can influence genetics, and they provide the missing link between genetic heritability and environmental influences on the behavioral and physiological phenotypes of the offspring.
  • Yuan TF, Li A, Sun X, Ouyang H, Campos C, Rocha NB, Arias-Carrión O, Machado S, Hou G, So KF (2015). “Transgenerational Inheritance of Paternal Neurobehavioral Phenotypes: Stress, Addiction, Ageing and Metabolism”. Mol. Neurobiol. 53 (9): 6367–76. doi:10.1007/s12035-015-9526-2. hdl:10400.22/7331. PMID 26572641.
  • Hyman SE, Malenka RC, Nestler EJ (2006). “Neural mechanisms of addiction: the role of reward-related learning and memory”. Annu. Rev. Neurosci. 29: 565–98. doi:10.1146/annurev.neuro.29.051605.113009. PMID 16776597.
  • Steiner H, Van Waes V (tháng 1 năm 2013). “Addiction-related gene regulation: risks of exposure to cognitive enhancers vs. other psychostimulants”. Prog. Neurobiol. 100: 60–80. doi:10.1016/j.pneurobio.2012.10.001. PMC 3525776. PMID 23085425.
  • Ruffle JK (tháng 11 năm 2014). “Molecular neurobiology of addiction: what's all the (Δ)FosB about?”. Am. J. Drug Alcohol Abuse. 40 (6): 428–37. doi:10.3109/00952990.2014.933840. PMID 25083822.
    The strong correlation between chronic drug exposure and ΔFosB provides novel opportunities for targeted therapies in addiction (118), and suggests methods to analyze their efficacy (119). Over the past two decades, research has progressed from identifying ΔFosB induction to investigating its subsequent action (38). It is likely that ΔFosB research will now progress into a new era – the use of ΔFosB as a biomarker. ...
    Conclusions
    ΔFosB is an essential transcription factor implicated in the molecular and behavioral pathways of addiction following repeated drug exposure. The formation of ΔFosB in multiple brain regions, and the molecular pathway leading to the formation of AP-1 complexes is well understood. The establishment of a functional purpose for ΔFosB has allowed further determination as to some of the key aspects of its molecular cascades, involving effectors such as GluR2 (87,88), Cdk5 (93) and NFkB (100). Moreover, many of these molecular changes identified are now directly linked to the structural, physiological and behavioral changes observed following chronic drug exposure (60,95,97,102). New frontiers of research investigating the molecular roles of ΔFosB have been opened by epigenetic studies, and recent advances have illustrated the role of ΔFosB acting on DNA and histones, truly as a molecular switch (34). As a consequence of our improved understanding of ΔFosB in addiction, it is possible to evaluate the addictive potential of current medications (119), as well as use it as a biomarker for assessing the efficacy of therapeutic interventions (121,122,124). Some of these proposed interventions have limitations (125) or are in their infancy (75). However, it is hoped that some of these preliminary findings may lead to innovative treatments, which are much needed in addiction.
  • Kim Y, Teylan MA, Baron M, Sands A, Nairn AC, Greengard P (tháng 2 năm 2009). “Methylphenidate-induced dendritic spine formation and DeltaFosB expression in nucleus accumbens”. Proc. Natl. Acad. Sci. USA. 106 (8): 2915–20. Bibcode:2009PNAS..106.2915K. doi:10.1073/pnas.0813179106. PMC 2650365. PMID 19202072.
  • Nestler EJ (tháng 1 năm 2014). “Epigenetic mechanisms of drug addiction”. Neuropharmacology. 76 Pt B: 259–68. doi:10.1016/j.neuropharm.2013.04.004. PMC 3766384. PMID 23643695. Short-term increases in histone acetylation generally promote behavioral responses to the drugs, while sustained increases oppose cocaine's effects, based on the actions of systemic or intra-NAc administration of HDAC inhibitors. ... Genetic or pharmacological blockade of G9a in the NAc potentiates behavioral responses to cocaine and opiates, whereas increasing G9a function exerts the opposite effect (Maze et al., 2010; Sun et al., 2012a). Such drug-induced downregulation of G9a and H3K9me2 also sensitizes animals to the deleterious effects of subsequent chronic stress (Covington et al., 2011). Downregulation of G9a increases the dendritic arborization of NAc neurons, and is associated with increased expression of numerous proteins implicated in synaptic function, which directly connects altered G9a/H3K9me2 in the synaptic plasticity associated with addiction (Maze et al., 2010).
    G9a appears to be a critical control point for epigenetic regulation in NAc, as we know it functions in two negative feedback loops. It opposes the induction of ΔFosB, a long-lasting transcription factor important for drug addiction (Robison and Nestler, 2011), while ΔFosB in turn suppresses G9a expression (Maze et al., 2010; Sun et al., 2012a). ... Also, G9a is induced in NAc upon prolonged HDAC inhibition, which explains the paradoxical attenuation of cocaine's behavioral effects seen under these conditions, as noted above (Kennedy et al., 2013). GABAA receptor subunit genes are among those that are controlled by this feedback loop. Thus, chronic cocaine, or prolonged HDAC inhibition, induces several GABAA receptor subunits in NAc, which is associated with increased frequency of inhibitory postsynaptic currents (IPSCs). In striking contrast, combined exposure to cocaine and HDAC inhibition, which triggers the induction of G9a and increased global levels of H3K9me2, leads to blockade of GABAA receptor and IPSC regulation.
  • Blum K, Werner T, Carnes S, Carnes P, Bowirrat A, Giordano J, Oscar-Berman M, Gold M (2012). “Sex, drugs, and rock 'n' roll: hypothesizing common mesolimbic activation as a function of reward gene polymorphisms”. Journal of Psychoactive Drugs. 44 (1): 38–55. doi:10.1080/02791072.2012.662112. PMC 4040958. PMID 22641964. It has been found that deltaFosB gene in the NAc is critical for reinforcing effects of sexual reward. Pitchers and colleagues (2010) reported that sexual experience was shown to cause DeltaFosB accumulation in several limbic brain regions including the NAc, medial pre-frontal cortex, VTA, caudate, and putamen, but not the medial preoptic nucleus. Next, the induction of c-Fos, a downstream (repressed) target of DeltaFosB, was measured in sexually experienced and naive animals. The number of mating-induced c-Fos-IR cells was significantly decreased in sexually experienced animals compared to sexually naive controls. Finally, DeltaFosB levels and its activity in the NAc were manipulated using viral-mediated gene transfer to study its potential role in mediating sexual experience and experience-induced facilitation of sexual performance. Animals with DeltaFosB overexpression displayed enhanced facilitation of sexual performance with sexual experience relative to controls. In contrast, the expression of DeltaJunD, a dominant-negative binding partner of DeltaFosB, attenuated sexual experience-induced facilitation of sexual performance, and stunted long-term maintenance of facilitation compared to DeltaFosB overexpressing group. Together, these findings support a critical role for DeltaFosB expression in the NAc in the reinforcing effects of sexual behavior and sexual experience-induced facilitation of sexual performance. ... both drug addiction and sexual addiction represent pathological forms of neuroplasticity along with the emergence of aberrant behaviors involving a cascade of neurochemical changes mainly in the brain's rewarding circuitry.
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  • Nestler EJ, Barrot M, Self DW (tháng 9 năm 2001). “DeltaFosB: a sustained molecular switch for addiction”. Proc. Natl. Acad. Sci. U.S.A. 98 (20): 11042–46. Bibcode:2001PNAS...9811042N. doi:10.1073/pnas.191352698. PMC 58680. PMID 11572966. Although the ΔFosB signal is relatively long-lived, it is not permanent. ΔFosB degrades gradually and can no longer be detected in brain after 1–2 months of drug withdrawal ... Indeed, ΔFosB is the longest-lived adaptation known to occur in adult brain, not only in response to drugs of abuse, but to any other perturbation (that doesn't involve lesions) as well.
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  • Nestler EJ (tháng 12 năm 2013). “Cellular basis of memory for addiction”. Dialogues in Clinical Neuroscience. 15 (4): 431–443. PMC 3898681. PMID 24459410. Mặc cho tầm quan trọng của nhiều yếu tố tâm lý xã hội, nhưng về bản chất, nghiện ma túy bao gồm một quá trình sinh học: khả năng tiếp xúc nhiều lần với một loại thuốc lạm dụng để tạo ra những thay đổi trong não dễ bị tổn thương dẫn tới việc kiếm tìm và uống thuốc mang tính bắt buộc, và mất khả năng kiểm soát việc sử dụng ma túy, điều xác định tình trạng nghiện. ... Một tài liệu lớn đã chứng minh rằng loại cảm ứng ΔFosB như vậy trong các tế bào thần kinh loại D1 [nhân cạp - nucleus accumbens] làm tăng độ nhạy cảm của động vật đối với ma túy cũng như các phần thưởng tự nhiên và thúc đẩy việc tự cho phép sử dụng ma tùy, có lẽ thông qua quá trình củng cố tích cực ... Một mục tiêu ΔFosB khác là cFos: bởi ΔFosB tích lũy khi tiếp xúc với thuốc lặp đi lặp lại, nó ức chế c-Fos và góp phần chuyển đổi phân tử, theo đó ΔFosB được chọn lọc trong trạng thái điều trị ma túy mãn tính.41 ... Hơn nữa, ngày càng có nhiều bằng chứng cho thấy, mặc dù có nhiều rủi ro di truyền gây nghiện trong dân số, việc tiếp xúc với liều thuốc đủ cao trong thời gian dài có thể biến một người có tải lượng gen tương đối thấp thành con nghiện.
  • Volkow ND, Koob GF, McLellan AT (tháng 1 năm 2016). “Neurobiologic Advances from the Brain Disease Model of Addiction”. New England Journal of Medicine. 374 (4): 363–371. doi:10.1056/NEJMra1511480. PMC 6135257. PMID 26816013. Rối loạn sử dụng chất: Thuật ngữ chẩn đoán trong phiên bản thứ năm của Cẩm nang chẩn đoán và thống kê rối loạn tâm thần (DSM-5) đề cập đến việc sử dụng rượu hoặc các loại thuốc khác gây suy giảm đáng kể về mặt lâm sàng và chức năng, như các vấn đề về sức khỏe, khuyết tật, và không đáp ứng các trách nhiệm chính tại nơi làm việc, trường học hoặc nhà. Tùy thuộc vào mức độ nghiêm trọng, rối loạn này được phân loại là nhẹ, trung bình hoặc nặng.
    Nghiện: Một thuật ngữ được sử dụng để chỉ giai đoạn rối loạn sử dụng chất nghiêm trọng và mãn tính nhất, trong đó có sự mất tự chủ đáng kể, được chỉ định bằng cách uống thuốc bắt buộc mặc dù muốn ngừng dùng thuốc. Trong DSM-5, thuật ngữ 'nghiện' đồng nghĩa với việc phân loại rối loạn sử dụng chất nghiêm trọng.
  • Angres DH, Bettinardi-Angres K (2008). “The disease of addiction: origins, treatment, and recovery”. Dis Mon. 54 (10): 696–721. doi:10.1016/j.disamonth.2008.07.002. PMID 18790142.
  • Angres DH, Bettinardi-Angres K (tháng 10 năm 2008). “The disease of addiction: origins, treatment, and recovery”. Disease-A-Month. 54 (10): 696–721. doi:10.1016/j.disamonth.2008.07.002. PMID 18790142.
  • Taylor SB, Lewis CR, Olive MF (tháng 2 năm 2013). “The neurocircuitry of illicit psychostimulant addiction: acute and chronic effects in humans”. Subst. Abuse Rehabil. 4: 29–43. doi:10.2147/SAR.S39684. PMC 3931688. PMID 24648786. Initial drug use can be attributed to the ability of the drug to act as a reward (ie, a pleasurable emotional state or positive reinforcer), which can lead to repeated drug use and dependence.8,9 A great deal of research has focused on the molecular and neuroanatomical mechanisms of the initial rewarding or reinforcing effect of drugs of abuse. ... At present, no pharmacological therapy has been approved by the FDA to treat psychostimulant addiction. Many drugs have been tested, but none have shown conclusive efficacy with tolerable side effects in humans.172 ... A new emphasis on larger-scale biomarker, genetic, and epigenetic research focused on the molecular targets of mental disorders has been recently advocated.212 In addition, the integration of cognitive and behavioral modification of circuit-wide neuroplasticity (ie, computer-based training to enhance executive function) may prove to be an effective adjunct-treatment approach for addiction, particularly when combined with cognitive enhancers.198,213–216 Furthermore, in order to be effective, all pharmacological or biologically based treatments for addiction need to be integrated into other established forms of addiction rehabilitation, such as cognitive behavioral therapy, individual and group psychotherapy, behavior-modification strategies, twelve-step programs, and residential treatment facilities.
  • Hammer R, Dingel M, Ostergren J, Partridge B, McCormick J, Koenig BA (ngày 1 tháng 7 năm 2013). “Addiction: Current Criticism of the Brain Disease Paradigm”. AJOB Neuroscience. 4 (3): 27–32. doi:10.1080/21507740.2013.796328. PMC 3969751. PMID 24693488.
  • Heather N (ngày 1 tháng 4 năm 2017). “Q: Is Addiction a Brain Disease or a Moral Failing? A: Neither”. Neuroethics. 10 (1): 115–124. doi:10.1007/s12152-016-9289-0. PMC 5486515. PMID 28725283. Bản gốc lưu trữ ngày 18 tháng 10 năm 2022. Truy cập ngày 25 tháng 7 năm 2020.
  • Satel S, Lilienfeld SO (2014). “Addiction and the brain-disease fallacy”. Frontiers in Psychiatry (bằng tiếng Anh). 4: 141. doi:10.3389/fpsyt.2013.00141. PMC 3939769. PMID 24624096. Bản gốc lưu trữ ngày 25 tháng 7 năm 2020. Truy cập ngày 25 tháng 7 năm 2020.
  • Peele S (tháng 12 năm 2016). “People Control Their Addictions: No matter how much the "chronic" brain disease model of addiction indicates otherwise, we know that people can quit addictions - with special reference to harm reduction and mindfulness”. Addictive Behaviors Reports. 4: 97–101. doi:10.1016/j.abrep.2016.05.003. PMC 5836519. PMID 29511729. Bản gốc lưu trữ ngày 25 tháng 7 năm 2020. Truy cập ngày 25 tháng 7 năm 2020.
  • Morse RM, Flavin DK (1992). “The definition of alcoholism. The Joint Committee of the National Council on Alcoholism and Drug Dependence and the American Society of Addiction Medicine to Study the Definition and Criteria for the Diagnosis of Alcoholism”. JAMA. 268 (8): 1012–4. doi:10.1001/jama.1992.03490080086030. PMID 1501306.
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  • Torres G, Horowitz JM (1999). “Drugs of abuse and brain gene expression”. Psychosom Med. 61 (5): 630–50. PMID 10511013.
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  • Morse RM, Flavin DK (tháng 8 năm 1992). “The definition of alcoholism. The Joint Committee of the National Council on Alcoholism and Drug Dependence and the American Society of Addiction Medicine to Study the Definition and Criteria for the Diagnosis of Alcoholism”. JAMA. 268 (8): 1012–14. doi:10.1001/jama.1992.03490080086030. PMID 1501306.
  • Marlatt GA, Baer JS, Donovan DM, Kivlahan DR (1988). “Addictive behaviors: etiology and treatment”. Annu Rev Psychol. 39: 223–52. doi:10.1146/annurev.ps.39.020188.001255. PMID 3278676.
  • Washburn DA (2016). “The Stroop effect at 80: The competition between stimulus control and cognitive control”. J Exp Anal Behav. 105 (1): 3–13. doi:10.1002/jeab.194. PMID 26781048. Today, arguably more than at any time in history, the constructs of attention, executive functioning, and cognitive control seem to be pervasive and preeminent in research and theory. Even within the cognitive framework, however, there has long been an understanding that behavior is multiply determined, and that many responses are relatively automatic, unattended, contention-scheduled, and habitual. Indeed, the cognitive flexibility, response inhibition, and self-regulation that appear to be hallmarks of cognitive control are noteworthy only in contrast to responses that are relatively rigid, associative, and involuntary.
  • Diamond A (2013). “Executive functions”. Annu Rev Psychol. 64: 135–68. doi:10.1146/annurev-psych-113011-143750. PMC 4084861. PMID 23020641. Core EFs are inhibition [response inhibition (self-control – resisting temptations and resisting acting impulsively) and interference control (selective attention and cognitive inhibition)], working memory, and cognitive flexibility (including creatively thinking "outside the box," seeing anything from different perspectives, and quickly and flexibly adapting to changed circumstances). ... EFs and prefrontal cortex are the first to suffer, and suffer disproportionately, if something is not right in your life. They suffer first, and most, if you are stressed (Arnsten 1998, Liston et al. 2009, Oaten & Cheng 2005), sad (Hirt et al. 2008, von Hecker & Meiser 2005), lonely (Baumeister et al. 2002, Cacioppo & Patrick 2008, Campbell et al. 2006, Tun et al. 2012), sleep deprived (Barnes et al. 2012, Huang et al. 2007), or not physically fit (Best 2010, Chaddock et al. 2011, Hillman et al. 2008). Any of these can cause you to appear to have a disorder of EFs, such as ADHD, when you do not. You can see the deleterious effects of stress, sadness, loneliness, and lack of physical health or fitness at the physiological and neuroanatomical level in prefrontal cortex and at the behavioral level in worse EFs (poorer reasoning and problem solving, forgetting things, and impaired ability to exercise discipline and self-control). ...
    EFs can be improved (Diamond & Lee 2011, Klingberg 2010). ... At any age across the life cycle EFs can be improved, including in the elderly and in infants. There has been much work with excellent results on improving EFs in the elderly by improving physical fitness (Erickson & Kramer 2009, Voss et al. 2011) ... Inhibitory control (one of the core EFs) involves being able to control one's attention, behavior, thoughts, and/or emotions to override a strong internal predisposition or external lure, and instead do what's more appropriate or needed. Without inhibitory control we would be at the mercy of impulses, old habits of thought or action (conditioned responses), and/or stimuli in the environment that pull us this way or that. Thus, inhibitory control makes it possible for us to change and for us to choose how we react and how we behave rather than being unthinking creatures of habit. It doesn't make it easy. Indeed, we usually are creatures of habit and our behavior is under the control of environmental stimuli far more than we usually realize, but having the ability to exercise inhibitory control creates the possibility of change and choice. ... The subthalamic nucleus appears to play a critical role in preventing such impulsive or premature responding (Frank 2006).
  • Olsen CM (tháng 12 năm 2011). “Natural rewards, neuroplasticity, and non-drug addictions”. Neuropharmacology. 61 (7): 1109–22. doi:10.1016/j.neuropharm.2011.03.010. PMC 3139704. PMID 21459101. Functional neuroimaging studies in humans have shown that gambling (Breiter et al, 2001), shopping (Knutson et al, 2007), orgasm (Komisaruk et al, 2004), playing video games (Koepp et al, 1998; Hoeft et al, 2008) and the sight of appetizing food (Wang et al, 2004a) activate many of the same brain regions (i.e., the mesocorticolimbic system and extended amygdala) as drugs of abuse (Volkow et al, 2004). ... Cross-sensitization is also bidirectional, as a history of amphetamine administration facilitates sexual behavior and enhances the associated increase in NAc DA ... As described for food reward, sexual experience can also lead to activation of plasticity-related signaling cascades. The transcription factor delta FosB is increased in the NAc, PFC, dorsal striatum, and VTA following repeated sexual behavior (Wallace et al., 2008; Pitchers et al., 2010b). This natural increase in delta FosB or viral overexpression of delta FosB within the NAc modulates sexual performance, and NAc blockade of delta FosB attenuates this behavior (Hedges et al, 2009; Pitchers et al., 2010b). Further, viral overexpression of delta FosB enhances the conditioned place preference for an environment paired with sexual experience (Hedges et al., 2009). ... In some people, there is a transition from "normal" to compulsive engagement in natural rewards (such as food or sex), a condition that some have termed behavioral or non-drug addictions (Holden, 2001; Grant et al., 2006a). ... In humans, the role of dopamine signaling in incentive-sensitization processes has recently been highlighted by the observation of a dopamine dysregulation syndrome in some patients taking dopaminergic drugs. This syndrome is characterized by a medication-induced increase in (or compulsive) engagement in non-drug rewards such as gambling, shopping, or sex (Evans et al, 2006; Aiken, 2007; Lader, 2008)."Table 1: Summary of plasticity observed following exposure to drug or natural reinforcers Lưu trữ 2021-08-09 tại Wayback Machine"
  • Robison AJ, Nestler EJ (tháng 11 năm 2011). “Transcriptional and epigenetic mechanisms of addiction”. Nat. Rev. Neurosci. 12 (11): 623–37. doi:10.1038/nrn3111. PMC 3272277. PMID 21989194. ΔFosB has been linked directly to several addiction-related behaviors ... Importantly, genetic or viral overexpression of ΔJunD, a dominant negative mutant of JunD which antagonizes ΔFosB- and other AP-1-mediated transcriptional activity, in the NAc or OFC blocks these key effects of drug exposure14,22–24. This indicates that ΔFosB is both necessary and sufficient for many of the changes wrought in the brain by chronic drug exposure. ΔFosB is also induced in D1-type NAc MSNs by chronic consumption of several natural rewards, including sucrose, high fat food, sex, wheel running, where it promotes that consumption14,26–30. This implicates ΔFosB in the regulation of natural rewards under normal conditions and perhaps during pathological addictive-like states.
  • Karila L, Wéry A, Weinstein A, Cottencin O, Petit A, Reynaud M, Billieux J (2014). “Sexual addiction or hypersexual disorder: different terms for the same problem? A review of the literature”. Curr. Pharm. Des. 20 (25): 4012–20. doi:10.2174/13816128113199990619. PMID 24001295. Sexual addiction, which is also known as hypersexual disorder, has largely been ignored by psychiatrists, even though the condition causes serious psychosocial problems for many people. A lack of empirical evidence on sexual addiction is the result of the disease's complete absence from versions of the Diagnostic and Statistical Manual of Mental Disorders. ... Existing prevalence rates of sexual addiction-related disorders range from 3% to 6%. Sexual addiction/hypersexual disorder is used as an umbrella construct to encompass various types of problematic behaviors, including excessive masturbation, cybersex, pornography use, sexual behavior with consenting adults, telephone sex, strip club visitation, and other behaviors. The adverse consequences of sexual addiction are similar to the consequences of other addictive disorders. Addictive, somatic and psychiatric disorders coexist with sexual addiction. In recent years, research on sexual addiction has proliferated, and screening instruments have increasingly been developed to diagnose or quantify sexual addiction disorders. In our systematic review of the existing measures, 22 questionnaires were identified. As with other behavioral addictions, the appropriate treatment of sexual addiction should combine pharmacological and psychological approaches.
  • Pitchers KK, Vialou V, Nestler EJ, Laviolette SR, Lehman MN, Coolen LM (tháng 2 năm 2013). “Natural and drug rewards act on common neural plasticity mechanisms with ΔFosB as a key mediator”. The Journal of Neuroscience. 33 (8): 3434–42. doi:10.1523/JNEUROSCI.4881-12.2013. PMC 3865508. PMID 23426671. Drugs of abuse induce neuroplasticity in the natural reward pathway, specifically the nucleus accumbens (NAc), thereby causing development and expression of addictive behavior. ... Together, these findings demonstrate that drugs of abuse and natural reward behaviors act on common molecular and cellular mechanisms of plasticity that control vulnerability to drug addiction, and that this increased vulnerability is mediated by ΔFosB and its downstream transcriptional targets. ... Sexual behavior is highly rewarding (Tenk et al., 2009), and sexual experience causes sensitized drug-related behaviors, including cross-sensitization to amphetamine (Amph)-induced locomotor activity (Bradley and Meisel, 2001; Pitchers et al., 2010a) and enhanced Amph reward (Pitchers et al., 2010a). Moreover, sexual experience induces neural plasticity in the NAc similar to that induced by psychostimulant exposure, including increased dendritic spine density (Meisel and Mullins, 2006; Pitchers et al., 2010a), altered glutamate receptor trafficking, and decreased synaptic strength in prefrontal cortex-responding NAc shell neurons (Pitchers et al., 2012). Finally, periods of abstinence from sexual experience were found to be critical for enhanced Amph reward, NAc spinogenesis (Pitchers et al., 2010a), and glutamate receptor trafficking (Pitchers et al., 2012). These findings suggest that natural and drug reward experiences share common mechanisms of neural plasticity
  • Beloate LN, Weems PW, Casey GR, Webb IC, Coolen LM (tháng 2 năm 2016). “Nucleus accumbens NMDA receptor activation regulates amphetamine cross-sensitization and deltaFosB expression following sexual experience in male rats”. Neuropharmacology. 101: 154–64. doi:10.1016/j.neuropharm.2015.09.023. PMID 26391065.
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    The evidence presented here demonstrates that rapid environmental adaptation occurs following exposure to a number of stimuli. Epigenetic mechanisms represent the key components by which the environment can influence genetics, and they provide the missing link between genetic heritability and environmental influences on the behavioral and physiological phenotypes of the offspring.
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  • Yuan TF, Li A, Sun X, Ouyang H, Campos C, Rocha NB, Arias-Carrión O, Machado S, Hou G, So KF (2015). “Transgenerational Inheritance of Paternal Neurobehavioral Phenotypes: Stress, Addiction, Ageing and Metabolism”. Mol. Neurobiol. 53 (9): 6367–76. doi:10.1007/s12035-015-9526-2. PMID 26572641.
  • Vassoler FM, Sadri-Vakili G (2014). “Mechanisms of transgenerational inheritance of addictive-like behaviors”. Neuroscience. 264: 198–206. doi:10.1016/j.neuroscience.2013.07.064. PMC 3872494. PMID 23920159. However, the components that are responsible for the heritability of characteristics that make an individual more susceptible to drug addiction in humans remain largely unknown given that patterns of inheritance cannot be explained by simple genetic mechanisms (Cloninger et al., 1981; Schuckit et al., 1972). The environment also plays a large role in the development of addiction as evidenced by great societal variability in drug use patterns between countries and across time (UNODC, 2012). Therefore, both genetics and the environment contribute to an individual's vulnerability to become addicted following an initial exposure to drugs of abuse. ...
    The evidence presented here demonstrates that rapid environmental adaptation occurs following exposure to a number of stimuli. Epigenetic mechanisms represent the key components by which the environment can influence genetics, and they provide the missing link between genetic heritability and environmental influences on the behavioral and physiological phenotypes of the offspring.
  • Yuan TF, Li A, Sun X, Ouyang H, Campos C, Rocha NB, Arias-Carrión O, Machado S, Hou G, So KF (2015). “Transgenerational Inheritance of Paternal Neurobehavioral Phenotypes: Stress, Addiction, Ageing and Metabolism”. Mol. Neurobiol. 53 (9): 6367–76. doi:10.1007/s12035-015-9526-2. hdl:10400.22/7331. PMID 26572641.
  • Hyman SE, Malenka RC, Nestler EJ (2006). “Neural mechanisms of addiction: the role of reward-related learning and memory”. Annu. Rev. Neurosci. 29: 565–98. doi:10.1146/annurev.neuro.29.051605.113009. PMID 16776597.
  • Steiner H, Van Waes V (tháng 1 năm 2013). “Addiction-related gene regulation: risks of exposure to cognitive enhancers vs. other psychostimulants”. Prog. Neurobiol. 100: 60–80. doi:10.1016/j.pneurobio.2012.10.001. PMC 3525776. PMID 23085425.
  • Ruffle JK (tháng 11 năm 2014). “Molecular neurobiology of addiction: what's all the (Δ)FosB about?”. Am. J. Drug Alcohol Abuse. 40 (6): 428–37. doi:10.3109/00952990.2014.933840. PMID 25083822.
    The strong correlation between chronic drug exposure and ΔFosB provides novel opportunities for targeted therapies in addiction (118), and suggests methods to analyze their efficacy (119). Over the past two decades, research has progressed from identifying ΔFosB induction to investigating its subsequent action (38). It is likely that ΔFosB research will now progress into a new era – the use of ΔFosB as a biomarker. ...
    Conclusions
    ΔFosB is an essential transcription factor implicated in the molecular and behavioral pathways of addiction following repeated drug exposure. The formation of ΔFosB in multiple brain regions, and the molecular pathway leading to the formation of AP-1 complexes is well understood. The establishment of a functional purpose for ΔFosB has allowed further determination as to some of the key aspects of its molecular cascades, involving effectors such as GluR2 (87,88), Cdk5 (93) and NFkB (100). Moreover, many of these molecular changes identified are now directly linked to the structural, physiological and behavioral changes observed following chronic drug exposure (60,95,97,102). New frontiers of research investigating the molecular roles of ΔFosB have been opened by epigenetic studies, and recent advances have illustrated the role of ΔFosB acting on DNA and histones, truly as a molecular switch (34). As a consequence of our improved understanding of ΔFosB in addiction, it is possible to evaluate the addictive potential of current medications (119), as well as use it as a biomarker for assessing the efficacy of therapeutic interventions (121,122,124). Some of these proposed interventions have limitations (125) or are in their infancy (75). However, it is hoped that some of these preliminary findings may lead to innovative treatments, which are much needed in addiction.
  • Kim Y, Teylan MA, Baron M, Sands A, Nairn AC, Greengard P (tháng 2 năm 2009). “Methylphenidate-induced dendritic spine formation and DeltaFosB expression in nucleus accumbens”. Proc. Natl. Acad. Sci. USA. 106 (8): 2915–20. Bibcode:2009PNAS..106.2915K. doi:10.1073/pnas.0813179106. PMC 2650365. PMID 19202072.
  • Nestler EJ (tháng 1 năm 2014). “Epigenetic mechanisms of drug addiction”. Neuropharmacology. 76 Pt B: 259–68. doi:10.1016/j.neuropharm.2013.04.004. PMC 3766384. PMID 23643695. Short-term increases in histone acetylation generally promote behavioral responses to the drugs, while sustained increases oppose cocaine's effects, based on the actions of systemic or intra-NAc administration of HDAC inhibitors. ... Genetic or pharmacological blockade of G9a in the NAc potentiates behavioral responses to cocaine and opiates, whereas increasing G9a function exerts the opposite effect (Maze et al., 2010; Sun et al., 2012a). Such drug-induced downregulation of G9a and H3K9me2 also sensitizes animals to the deleterious effects of subsequent chronic stress (Covington et al., 2011). Downregulation of G9a increases the dendritic arborization of NAc neurons, and is associated with increased expression of numerous proteins implicated in synaptic function, which directly connects altered G9a/H3K9me2 in the synaptic plasticity associated with addiction (Maze et al., 2010).
    G9a appears to be a critical control point for epigenetic regulation in NAc, as we know it functions in two negative feedback loops. It opposes the induction of ΔFosB, a long-lasting transcription factor important for drug addiction (Robison and Nestler, 2011), while ΔFosB in turn suppresses G9a expression (Maze et al., 2010; Sun et al., 2012a). ... Also, G9a is induced in NAc upon prolonged HDAC inhibition, which explains the paradoxical attenuation of cocaine's behavioral effects seen under these conditions, as noted above (Kennedy et al., 2013). GABAA receptor subunit genes are among those that are controlled by this feedback loop. Thus, chronic cocaine, or prolonged HDAC inhibition, induces several GABAA receptor subunits in NAc, which is associated with increased frequency of inhibitory postsynaptic currents (IPSCs). In striking contrast, combined exposure to cocaine and HDAC inhibition, which triggers the induction of G9a and increased global levels of H3K9me2, leads to blockade of GABAA receptor and IPSC regulation.
  • Biliński P, Wojtyła A, Kapka-Skrzypczak L, Chwedorowicz R, Cyranka M, Studziński T (2012). “Epigenetic regulation in drug addiction”. Ann. Agric. Environ. Med. 19 (3): 491–96. PMID 23020045. For these reasons, ΔFosB is considered a primary and causative transcription factor in creating new neural connections in the reward centre, prefrontal cortex, and other regions of the limbic system. This is reflected in the increased, stable and long-lasting level of sensitivity to cocaine and other drugs, and tendency to relapse even after long periods of abstinence. These newly constructed networks function very efficiently via new pathways as soon as drugs of abuse are further taken ... In this way, the induction of CDK5 gene expression occurs together with suppression of the G9A gene coding for dimethyltransferase acting on the histone H3. A feedback mechanism can be observed in the regulation of these 2 crucial factors that determine the adaptive epigenetic response to cocaine. This depends on ΔFosB inhibiting G9a gene expression, i.e. H3K9me2 synthesis which in turn inhibits transcription factors for ΔFosB. For this reason, the observed hyper-expression of G9a, which ensures high levels of the dimethylated form of histone H3, eliminates the neuronal structural and plasticity effects caused by cocaine by means of this feedback which blocks ΔFosB transcription
  • Blum K, Werner T, Carnes S, Carnes P, Bowirrat A, Giordano J, Oscar-Berman M, Gold M (2012). “Sex, drugs, and rock 'n' roll: hypothesizing common mesolimbic activation as a function of reward gene polymorphisms”. Journal of Psychoactive Drugs. 44 (1): 38–55. doi:10.1080/02791072.2012.662112. PMC 4040958. PMID 22641964. It has been found that deltaFosB gene in the NAc is critical for reinforcing effects of sexual reward. Pitchers and colleagues (2010) reported that sexual experience was shown to cause DeltaFosB accumulation in several limbic brain regions including the NAc, medial pre-frontal cortex, VTA, caudate, and putamen, but not the medial preoptic nucleus. Next, the induction of c-Fos, a downstream (repressed) target of DeltaFosB, was measured in sexually experienced and naive animals. The number of mating-induced c-Fos-IR cells was significantly decreased in sexually experienced animals compared to sexually naive controls. Finally, DeltaFosB levels and its activity in the NAc were manipulated using viral-mediated gene transfer to study its potential role in mediating sexual experience and experience-induced facilitation of sexual performance. Animals with DeltaFosB overexpression displayed enhanced facilitation of sexual performance with sexual experience relative to controls. In contrast, the expression of DeltaJunD, a dominant-negative binding partner of DeltaFosB, attenuated sexual experience-induced facilitation of sexual performance, and stunted long-term maintenance of facilitation compared to DeltaFosB overexpressing group. Together, these findings support a critical role for DeltaFosB expression in the NAc in the reinforcing effects of sexual behavior and sexual experience-induced facilitation of sexual performance. ... both drug addiction and sexual addiction represent pathological forms of neuroplasticity along with the emergence of aberrant behaviors involving a cascade of neurochemical changes mainly in the brain's rewarding circuitry.
  • Salamone JD (1992). “Complex motor and sensorimotor functions of striatal and accumbens dopamine: involvement in instrumental behavior processes”. Psychopharmacology. 107 (2–3): 160–74. doi:10.1007/bf02245133. PMID 1615120.
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  • Witten IB, Lin SC, Brodsky M, Prakash R, Diester I, Anikeeva P, và đồng nghiệp (tháng 12 năm 2010). “Cholinergic interneurons control local circuit activity and cocaine conditioning”. Science. 330 (6011): 1677–81. Bibcode:2010Sci...330.1677W. doi:10.1126/science.1193771. PMC 3142356. PMID 21164015.
  • Nestler EJ, Barrot M, Self DW (tháng 9 năm 2001). “DeltaFosB: a sustained molecular switch for addiction”. Proc. Natl. Acad. Sci. U.S.A. 98 (20): 11042–46. Bibcode:2001PNAS...9811042N. doi:10.1073/pnas.191352698. PMC 58680. PMID 11572966. Although the ΔFosB signal is relatively long-lived, it is not permanent. ΔFosB degrades gradually and can no longer be detected in brain after 1–2 months of drug withdrawal ... Indeed, ΔFosB is the longest-lived adaptation known to occur in adult brain, not only in response to drugs of abuse, but to any other perturbation (that doesn't involve lesions) as well.
  • Jones S, Bonci A (2005). “Synaptic plasticity and drug addiction”. Current Opinion in Pharmacology. 5 (1): 20–25. doi:10.1016/j.coph.2004.08.011. PMID 15661621.
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  • Kourrich S, Rothwell PE, Klug JR, Thomas MJ (2007). “Cocaine experience controls bidirectional synaptic plasticity in the nucleus accumbens”. J. Neurosci. 27 (30): 7921–28. doi:10.1523/JNEUROSCI.1859-07.2007. PMC 6672735. PMID 17652583.
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ncbi.nlm.nih.gov

  • Nestler EJ (tháng 12 năm 2013). “Cellular basis of memory for addiction”. Dialogues in Clinical Neuroscience. 15 (4): 431–443. PMC 3898681. PMID 24459410. Mặc cho tầm quan trọng của nhiều yếu tố tâm lý xã hội, nhưng về bản chất, nghiện ma túy bao gồm một quá trình sinh học: khả năng tiếp xúc nhiều lần với một loại thuốc lạm dụng để tạo ra những thay đổi trong não dễ bị tổn thương dẫn tới việc kiếm tìm và uống thuốc mang tính bắt buộc, và mất khả năng kiểm soát việc sử dụng ma túy, điều xác định tình trạng nghiện. ... Một tài liệu lớn đã chứng minh rằng loại cảm ứng ΔFosB như vậy trong các tế bào thần kinh loại D1 [nhân cạp - nucleus accumbens] làm tăng độ nhạy cảm của động vật đối với ma túy cũng như các phần thưởng tự nhiên và thúc đẩy việc tự cho phép sử dụng ma tùy, có lẽ thông qua quá trình củng cố tích cực ... Một mục tiêu ΔFosB khác là cFos: bởi ΔFosB tích lũy khi tiếp xúc với thuốc lặp đi lặp lại, nó ức chế c-Fos và góp phần chuyển đổi phân tử, theo đó ΔFosB được chọn lọc trong trạng thái điều trị ma túy mãn tính.41 ... Hơn nữa, ngày càng có nhiều bằng chứng cho thấy, mặc dù có nhiều rủi ro di truyền gây nghiện trong dân số, việc tiếp xúc với liều thuốc đủ cao trong thời gian dài có thể biến một người có tải lượng gen tương đối thấp thành con nghiện.
  • Volkow ND, Koob GF, McLellan AT (tháng 1 năm 2016). “Neurobiologic Advances from the Brain Disease Model of Addiction”. New England Journal of Medicine. 374 (4): 363–371. doi:10.1056/NEJMra1511480. PMC 6135257. PMID 26816013. Rối loạn sử dụng chất: Thuật ngữ chẩn đoán trong phiên bản thứ năm của Cẩm nang chẩn đoán và thống kê rối loạn tâm thần (DSM-5) đề cập đến việc sử dụng rượu hoặc các loại thuốc khác gây suy giảm đáng kể về mặt lâm sàng và chức năng, như các vấn đề về sức khỏe, khuyết tật, và không đáp ứng các trách nhiệm chính tại nơi làm việc, trường học hoặc nhà. Tùy thuộc vào mức độ nghiêm trọng, rối loạn này được phân loại là nhẹ, trung bình hoặc nặng.
    Nghiện: Một thuật ngữ được sử dụng để chỉ giai đoạn rối loạn sử dụng chất nghiêm trọng và mãn tính nhất, trong đó có sự mất tự chủ đáng kể, được chỉ định bằng cách uống thuốc bắt buộc mặc dù muốn ngừng dùng thuốc. Trong DSM-5, thuật ngữ 'nghiện' đồng nghĩa với việc phân loại rối loạn sử dụng chất nghiêm trọng.
  • Taylor SB, Lewis CR, Olive MF (tháng 2 năm 2013). “The neurocircuitry of illicit psychostimulant addiction: acute and chronic effects in humans”. Subst. Abuse Rehabil. 4: 29–43. doi:10.2147/SAR.S39684. PMC 3931688. PMID 24648786. Initial drug use can be attributed to the ability of the drug to act as a reward (ie, a pleasurable emotional state or positive reinforcer), which can lead to repeated drug use and dependence.8,9 A great deal of research has focused on the molecular and neuroanatomical mechanisms of the initial rewarding or reinforcing effect of drugs of abuse. ... At present, no pharmacological therapy has been approved by the FDA to treat psychostimulant addiction. Many drugs have been tested, but none have shown conclusive efficacy with tolerable side effects in humans.172 ... A new emphasis on larger-scale biomarker, genetic, and epigenetic research focused on the molecular targets of mental disorders has been recently advocated.212 In addition, the integration of cognitive and behavioral modification of circuit-wide neuroplasticity (ie, computer-based training to enhance executive function) may prove to be an effective adjunct-treatment approach for addiction, particularly when combined with cognitive enhancers.198,213–216 Furthermore, in order to be effective, all pharmacological or biologically based treatments for addiction need to be integrated into other established forms of addiction rehabilitation, such as cognitive behavioral therapy, individual and group psychotherapy, behavior-modification strategies, twelve-step programs, and residential treatment facilities.
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  • Peele S (tháng 12 năm 2016). “People Control Their Addictions: No matter how much the "chronic" brain disease model of addiction indicates otherwise, we know that people can quit addictions - with special reference to harm reduction and mindfulness”. Addictive Behaviors Reports. 4: 97–101. doi:10.1016/j.abrep.2016.05.003. PMC 5836519. PMID 29511729. Bản gốc lưu trữ ngày 25 tháng 7 năm 2020. Truy cập ngày 25 tháng 7 năm 2020.
  • Merikangas KR, McClair VL (tháng 6 năm 2012). “Epidemiology of Substance Use Disorders”. Hum. Genet. 131 (6): 779–89. doi:10.1007/s00439-012-1168-0. PMC 4408274. PMID 22543841.
  • Diamond A (2013). “Executive functions”. Annu Rev Psychol. 64: 135–68. doi:10.1146/annurev-psych-113011-143750. PMC 4084861. PMID 23020641. Core EFs are inhibition [response inhibition (self-control – resisting temptations and resisting acting impulsively) and interference control (selective attention and cognitive inhibition)], working memory, and cognitive flexibility (including creatively thinking "outside the box," seeing anything from different perspectives, and quickly and flexibly adapting to changed circumstances). ... EFs and prefrontal cortex are the first to suffer, and suffer disproportionately, if something is not right in your life. They suffer first, and most, if you are stressed (Arnsten 1998, Liston et al. 2009, Oaten & Cheng 2005), sad (Hirt et al. 2008, von Hecker & Meiser 2005), lonely (Baumeister et al. 2002, Cacioppo & Patrick 2008, Campbell et al. 2006, Tun et al. 2012), sleep deprived (Barnes et al. 2012, Huang et al. 2007), or not physically fit (Best 2010, Chaddock et al. 2011, Hillman et al. 2008). Any of these can cause you to appear to have a disorder of EFs, such as ADHD, when you do not. You can see the deleterious effects of stress, sadness, loneliness, and lack of physical health or fitness at the physiological and neuroanatomical level in prefrontal cortex and at the behavioral level in worse EFs (poorer reasoning and problem solving, forgetting things, and impaired ability to exercise discipline and self-control). ...
    EFs can be improved (Diamond & Lee 2011, Klingberg 2010). ... At any age across the life cycle EFs can be improved, including in the elderly and in infants. There has been much work with excellent results on improving EFs in the elderly by improving physical fitness (Erickson & Kramer 2009, Voss et al. 2011) ... Inhibitory control (one of the core EFs) involves being able to control one's attention, behavior, thoughts, and/or emotions to override a strong internal predisposition or external lure, and instead do what's more appropriate or needed. Without inhibitory control we would be at the mercy of impulses, old habits of thought or action (conditioned responses), and/or stimuli in the environment that pull us this way or that. Thus, inhibitory control makes it possible for us to change and for us to choose how we react and how we behave rather than being unthinking creatures of habit. It doesn't make it easy. Indeed, we usually are creatures of habit and our behavior is under the control of environmental stimuli far more than we usually realize, but having the ability to exercise inhibitory control creates the possibility of change and choice. ... The subthalamic nucleus appears to play a critical role in preventing such impulsive or premature responding (Frank 2006).
  • Olsen CM (tháng 12 năm 2011). “Natural rewards, neuroplasticity, and non-drug addictions”. Neuropharmacology. 61 (7): 1109–22. doi:10.1016/j.neuropharm.2011.03.010. PMC 3139704. PMID 21459101. Functional neuroimaging studies in humans have shown that gambling (Breiter et al, 2001), shopping (Knutson et al, 2007), orgasm (Komisaruk et al, 2004), playing video games (Koepp et al, 1998; Hoeft et al, 2008) and the sight of appetizing food (Wang et al, 2004a) activate many of the same brain regions (i.e., the mesocorticolimbic system and extended amygdala) as drugs of abuse (Volkow et al, 2004). ... Cross-sensitization is also bidirectional, as a history of amphetamine administration facilitates sexual behavior and enhances the associated increase in NAc DA ... As described for food reward, sexual experience can also lead to activation of plasticity-related signaling cascades. The transcription factor delta FosB is increased in the NAc, PFC, dorsal striatum, and VTA following repeated sexual behavior (Wallace et al., 2008; Pitchers et al., 2010b). This natural increase in delta FosB or viral overexpression of delta FosB within the NAc modulates sexual performance, and NAc blockade of delta FosB attenuates this behavior (Hedges et al, 2009; Pitchers et al., 2010b). Further, viral overexpression of delta FosB enhances the conditioned place preference for an environment paired with sexual experience (Hedges et al., 2009). ... In some people, there is a transition from "normal" to compulsive engagement in natural rewards (such as food or sex), a condition that some have termed behavioral or non-drug addictions (Holden, 2001; Grant et al., 2006a). ... In humans, the role of dopamine signaling in incentive-sensitization processes has recently been highlighted by the observation of a dopamine dysregulation syndrome in some patients taking dopaminergic drugs. This syndrome is characterized by a medication-induced increase in (or compulsive) engagement in non-drug rewards such as gambling, shopping, or sex (Evans et al, 2006; Aiken, 2007; Lader, 2008)."Table 1: Summary of plasticity observed following exposure to drug or natural reinforcers Lưu trữ 2021-08-09 tại Wayback Machine"
  • Robison AJ, Nestler EJ (tháng 11 năm 2011). “Transcriptional and epigenetic mechanisms of addiction”. Nat. Rev. Neurosci. 12 (11): 623–37. doi:10.1038/nrn3111. PMC 3272277. PMID 21989194. ΔFosB has been linked directly to several addiction-related behaviors ... Importantly, genetic or viral overexpression of ΔJunD, a dominant negative mutant of JunD which antagonizes ΔFosB- and other AP-1-mediated transcriptional activity, in the NAc or OFC blocks these key effects of drug exposure14,22–24. This indicates that ΔFosB is both necessary and sufficient for many of the changes wrought in the brain by chronic drug exposure. ΔFosB is also induced in D1-type NAc MSNs by chronic consumption of several natural rewards, including sucrose, high fat food, sex, wheel running, where it promotes that consumption14,26–30. This implicates ΔFosB in the regulation of natural rewards under normal conditions and perhaps during pathological addictive-like states.
  • Pitchers KK, Vialou V, Nestler EJ, Laviolette SR, Lehman MN, Coolen LM (tháng 2 năm 2013). “Natural and drug rewards act on common neural plasticity mechanisms with ΔFosB as a key mediator”. The Journal of Neuroscience. 33 (8): 3434–42. doi:10.1523/JNEUROSCI.4881-12.2013. PMC 3865508. PMID 23426671. Drugs of abuse induce neuroplasticity in the natural reward pathway, specifically the nucleus accumbens (NAc), thereby causing development and expression of addictive behavior. ... Together, these findings demonstrate that drugs of abuse and natural reward behaviors act on common molecular and cellular mechanisms of plasticity that control vulnerability to drug addiction, and that this increased vulnerability is mediated by ΔFosB and its downstream transcriptional targets. ... Sexual behavior is highly rewarding (Tenk et al., 2009), and sexual experience causes sensitized drug-related behaviors, including cross-sensitization to amphetamine (Amph)-induced locomotor activity (Bradley and Meisel, 2001; Pitchers et al., 2010a) and enhanced Amph reward (Pitchers et al., 2010a). Moreover, sexual experience induces neural plasticity in the NAc similar to that induced by psychostimulant exposure, including increased dendritic spine density (Meisel and Mullins, 2006; Pitchers et al., 2010a), altered glutamate receptor trafficking, and decreased synaptic strength in prefrontal cortex-responding NAc shell neurons (Pitchers et al., 2012). Finally, periods of abstinence from sexual experience were found to be critical for enhanced Amph reward, NAc spinogenesis (Pitchers et al., 2010a), and glutamate receptor trafficking (Pitchers et al., 2012). These findings suggest that natural and drug reward experiences share common mechanisms of neural plasticity
  • Meule A, Gearhardt AN (tháng 9 năm 2014). “Food addiction in the light of DSM-5”. Nutrients. 6 (9): 3653–71. doi:10.3390/nu6093653. PMC 4179181. PMID 25230209.
  • Vassoler FM, Sadri-Vakili G (2014). “Mechanisms of transgenerational inheritance of addictive-like behaviors”. Neuroscience. 264: 198–206. doi:10.1016/j.neuroscience.2013.07.064. PMC 3872494. PMID 23920159. However, the components that are responsible for the heritability of characteristics that make an individual more susceptible to drug addiction in humans remain largely unknown given that patterns of inheritance cannot be explained by simple genetic mechanisms (Cloninger et al., 1981; Schuckit et al., 1972). The environment also plays a large role in the development of addiction as evidenced by great societal variability in drug use patterns between countries and across time (UNODC, 2012). Therefore, both genetics and the environment contribute to an individual's vulnerability to become addicted following an initial exposure to drugs of abuse. ...
    The evidence presented here demonstrates that rapid environmental adaptation occurs following exposure to a number of stimuli. Epigenetic mechanisms represent the key components by which the environment can influence genetics, and they provide the missing link between genetic heritability and environmental influences on the behavioral and physiological phenotypes of the offspring.
  • Mayfield RD, Harris RA,1, Schuckit MA (May 2008) "Genetic factors influencing alcohol dependence" Lưu trữ 2022-10-18 tại Wayback Machine PMID 18362899 Lưu trữ 2009-10-08 tại Wayback Machine
  • Clarke TK, Crist RC, Kampman KM, Dackis CA, Pettinati HM, O'Brien CP, Oslin DW, Ferraro TN, Lohoff FW, Berrettini WH (2013). “Low frequency genetic variants in the μ-opioid receptor (OPRM1) affect risk for addiction to heroin and cocaine”. Neuroscience Letters. 542: 71–75. doi:10.1016/j.neulet.2013.02.018. PMC 3640707. PMID 23454283.
  • Hall FS, Drgonova J, Jain S, Uhl GR (tháng 12 năm 2013). “Implications of genome wide association studies for addiction: are our a priori assumptions all wrong?”. Pharmacology & Therapeutics. 140 (3): 267–79. doi:10.1016/j.pharmthera.2013.07.006. PMC 3797854. PMID 23872493.
  • Enoch, Mary (2011). “The role of early life stress as a predictor for alcohol and drug dependence”. Psychopharmacology. 214 (1): 17–31. doi:10.1007/s00213-010-1916-6. PMC 3005022. PMID 20596857.
  • Hammond CJ, Mayes LC, Potenza MN (tháng 4 năm 2014). “Neurobiology of adolescent substance use and addictive behaviors: treatment implications”. Adolescent Medicine. 25 (1): 15–32. PMC 4446977. PMID 25022184.
  • Perepletchikova F, Krystal JH, Kaufman J (tháng 11 năm 2008). “Practitioner review: adolescent alcohol use disorders: assessment and treatment issues”. Journal of Child Psychology and Psychiatry, and Allied Disciplines. 49 (11): 1131–54. doi:10.1111/j.1469-7610.2008.01934.x. PMC 4113213. PMID 19017028.
  • Vassoler FM, Sadri-Vakili G (2014). “Mechanisms of transgenerational inheritance of addictive-like behaviors”. Neuroscience. 264: 198–206. doi:10.1016/j.neuroscience.2013.07.064. PMC 3872494. PMID 23920159. However, the components that are responsible for the heritability of characteristics that make an individual more susceptible to drug addiction in humans remain largely unknown given that patterns of inheritance cannot be explained by simple genetic mechanisms (Cloninger et al., 1981; Schuckit et al., 1972). The environment also plays a large role in the development of addiction as evidenced by great societal variability in drug use patterns between countries and across time (UNODC, 2012). Therefore, both genetics and the environment contribute to an individual's vulnerability to become addicted following an initial exposure to drugs of abuse. ...
    The evidence presented here demonstrates that rapid environmental adaptation occurs following exposure to a number of stimuli. Epigenetic mechanisms represent the key components by which the environment can influence genetics, and they provide the missing link between genetic heritability and environmental influences on the behavioral and physiological phenotypes of the offspring.
  • Steiner H, Van Waes V (tháng 1 năm 2013). “Addiction-related gene regulation: risks of exposure to cognitive enhancers vs. other psychostimulants”. Prog. Neurobiol. 100: 60–80. doi:10.1016/j.pneurobio.2012.10.001. PMC 3525776. PMID 23085425.
  • Kim Y, Teylan MA, Baron M, Sands A, Nairn AC, Greengard P (tháng 2 năm 2009). “Methylphenidate-induced dendritic spine formation and DeltaFosB expression in nucleus accumbens”. Proc. Natl. Acad. Sci. USA. 106 (8): 2915–20. Bibcode:2009PNAS..106.2915K. doi:10.1073/pnas.0813179106. PMC 2650365. PMID 19202072.
  • Nestler EJ (tháng 1 năm 2014). “Epigenetic mechanisms of drug addiction”. Neuropharmacology. 76 Pt B: 259–68. doi:10.1016/j.neuropharm.2013.04.004. PMC 3766384. PMID 23643695. Short-term increases in histone acetylation generally promote behavioral responses to the drugs, while sustained increases oppose cocaine's effects, based on the actions of systemic or intra-NAc administration of HDAC inhibitors. ... Genetic or pharmacological blockade of G9a in the NAc potentiates behavioral responses to cocaine and opiates, whereas increasing G9a function exerts the opposite effect (Maze et al., 2010; Sun et al., 2012a). Such drug-induced downregulation of G9a and H3K9me2 also sensitizes animals to the deleterious effects of subsequent chronic stress (Covington et al., 2011). Downregulation of G9a increases the dendritic arborization of NAc neurons, and is associated with increased expression of numerous proteins implicated in synaptic function, which directly connects altered G9a/H3K9me2 in the synaptic plasticity associated with addiction (Maze et al., 2010).
    G9a appears to be a critical control point for epigenetic regulation in NAc, as we know it functions in two negative feedback loops. It opposes the induction of ΔFosB, a long-lasting transcription factor important for drug addiction (Robison and Nestler, 2011), while ΔFosB in turn suppresses G9a expression (Maze et al., 2010; Sun et al., 2012a). ... Also, G9a is induced in NAc upon prolonged HDAC inhibition, which explains the paradoxical attenuation of cocaine's behavioral effects seen under these conditions, as noted above (Kennedy et al., 2013). GABAA receptor subunit genes are among those that are controlled by this feedback loop. Thus, chronic cocaine, or prolonged HDAC inhibition, induces several GABAA receptor subunits in NAc, which is associated with increased frequency of inhibitory postsynaptic currents (IPSCs). In striking contrast, combined exposure to cocaine and HDAC inhibition, which triggers the induction of G9a and increased global levels of H3K9me2, leads to blockade of GABAA receptor and IPSC regulation.
  • Blum K, Werner T, Carnes S, Carnes P, Bowirrat A, Giordano J, Oscar-Berman M, Gold M (2012). “Sex, drugs, and rock 'n' roll: hypothesizing common mesolimbic activation as a function of reward gene polymorphisms”. Journal of Psychoactive Drugs. 44 (1): 38–55. doi:10.1080/02791072.2012.662112. PMC 4040958. PMID 22641964. It has been found that deltaFosB gene in the NAc is critical for reinforcing effects of sexual reward. Pitchers and colleagues (2010) reported that sexual experience was shown to cause DeltaFosB accumulation in several limbic brain regions including the NAc, medial pre-frontal cortex, VTA, caudate, and putamen, but not the medial preoptic nucleus. Next, the induction of c-Fos, a downstream (repressed) target of DeltaFosB, was measured in sexually experienced and naive animals. The number of mating-induced c-Fos-IR cells was significantly decreased in sexually experienced animals compared to sexually naive controls. Finally, DeltaFosB levels and its activity in the NAc were manipulated using viral-mediated gene transfer to study its potential role in mediating sexual experience and experience-induced facilitation of sexual performance. Animals with DeltaFosB overexpression displayed enhanced facilitation of sexual performance with sexual experience relative to controls. In contrast, the expression of DeltaJunD, a dominant-negative binding partner of DeltaFosB, attenuated sexual experience-induced facilitation of sexual performance, and stunted long-term maintenance of facilitation compared to DeltaFosB overexpressing group. Together, these findings support a critical role for DeltaFosB expression in the NAc in the reinforcing effects of sexual behavior and sexual experience-induced facilitation of sexual performance. ... both drug addiction and sexual addiction represent pathological forms of neuroplasticity along with the emergence of aberrant behaviors involving a cascade of neurochemical changes mainly in the brain's rewarding circuitry.
  • Witten IB, Lin SC, Brodsky M, Prakash R, Diester I, Anikeeva P, và đồng nghiệp (tháng 12 năm 2010). “Cholinergic interneurons control local circuit activity and cocaine conditioning”. Science. 330 (6011): 1677–81. Bibcode:2010Sci...330.1677W. doi:10.1126/science.1193771. PMC 3142356. PMID 21164015.
  • Nestler EJ, Barrot M, Self DW (tháng 9 năm 2001). “DeltaFosB: a sustained molecular switch for addiction”. Proc. Natl. Acad. Sci. U.S.A. 98 (20): 11042–46. Bibcode:2001PNAS...9811042N. doi:10.1073/pnas.191352698. PMC 58680. PMID 11572966. Although the ΔFosB signal is relatively long-lived, it is not permanent. ΔFosB degrades gradually and can no longer be detected in brain after 1–2 months of drug withdrawal ... Indeed, ΔFosB is the longest-lived adaptation known to occur in adult brain, not only in response to drugs of abuse, but to any other perturbation (that doesn't involve lesions) as well.
  • Kourrich S, Rothwell PE, Klug JR, Thomas MJ (2007). “Cocaine experience controls bidirectional synaptic plasticity in the nucleus accumbens”. J. Neurosci. 27 (30): 7921–28. doi:10.1523/JNEUROSCI.1859-07.2007. PMC 6672735. PMID 17652583.
  • Perry CJ, Zbukvic I, Kim JH, Lawrence AJ (tháng 10 năm 2014). “Role of cues and contexts on drug-seeking behaviour”. British Journal of Pharmacology. 171 (20): 4636–72. doi:10.1111/bph.12735. PMC 4209936. PMID 24749941.

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  • According to a review of experimental animal models that examined the transgenerational epigenetic inheritance of epigenetic marks that occur in addiction, alterations in histone acetylation – specifically, di-acetylation of lysine residues 9 and 14 on histone 3 (i.e., H3K9ac2H3K14ac2) in association with BDNF gene promoters – have been shown to occur within the medial prefrontal cortex (mPFC), testes, and sperm of cocaine-addicted male rats.[38] These epigenetic alterations in the rat mPFC result in increased BDNF gene expression within the mPFC, which in turn blunts the rewarding properties of cocaine and reduces cocaine self-administration.[38] The male but not female offspring of these cocaine-exposed rats inherited both epigenetic marks (i.e., di-acetylation of lysine residues 9 and 14 on histone 3) within mPFC neurons, the corresponding increase in BDNF expression within mPFC neurons, and the behavioral phenotype associated with these effects (i.e., a reduction in cocaine reward, resulting in reduced cocaine-seeking by these male offspring).[38] Consequently, the transmission of these two cocaine-induced epigenetic alterations (i.e., H3K9ac2 and H3K14ac2) in rats from male fathers to male offspring served to reduce the offspring's risk of developing an addiction to cocaine.[38] Tính đến năm 2018, neither the heritability of these epigenetic marks in humans nor the behavioral effects of the marks within human mPFC neurons has been established.[38]