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Advances in the Study of Neural Mechanisms Associated with Exercise to Ameliorate Nicotine Addiction

DOI: 10.4236/ape.2022.122010, PP. 126-141

Keywords: Nicotine Addiction, Reward Effect, Smoking Cessation, Acetylcholine, Midbrain Limbic Dopamine, Withdrawal Response, Exercise

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Abstract:

Objective: The objective is to elucidate the effectiveness of exercise as smoking cessation aid by sorting out the neurotransmitter basis of nicotine addiction and combining it with the neurotransmitter modulation effect of exercise, and finally to organize and analyze the mechanisms related to exercise to ameliorate nicotine addiction. Methods: We searched the Web of Science and PubMed databases for keywords, including “nicotine addiction”, “exercise”, “sports”, “physical activity”, “smoking cessation” and “tobacco withdrawal”, and compiled and analyzed the relevant literature to explain the neurobiological mechanisms of nicotine addiction and the effects of exercise on ameliorating nicotine addiction and related mechanisms. Results: 1) long-term nicotine intake, on the one hand, binds to acetylcholine receptors to produce rewarding effects, and on the other hand, causes rewarding effects by regulating the release of various neurotransmitters and signaling, making smokers feel pleasure and experiencing withdrawal symptoms after stopping smoking; 2) exercise can effectively ameliorate nicotine addiction; 3) exercise

References

[1]  Abrantes, A. M., Farris, S. G., Garnaat, S. L., Minto, A., Brown, R. A., Price, L. H., & Uebelacker, L. A. (2017). The Role of Physical Activity Enjoyment on the Acute Mood Experience of Exercise among Smokers with Elevated Depressive Symptoms. Mental Health and Physical Activity, 12, 37-43. https://doi.org/10.1016/j.mhpa.2017.02.001
[2]  Abrantes, A. M., Farris, S. G., Minami, H., Strong, D. R., Riebe, D., & Brown, R. A. (2018). Acute Effects of Aerobic Exercise on Affect and Smoking Craving in the Weeks before and after a Cessation Attempt. Nicotine & Tobacco Research, 20, 575-582.
https://doi.org/10.1093/ntr/ntx104
[3]  Albuquerque, E. X., Pereira, E. F., Alkondon, M., & Rogers, S. W. (2009). Mammalian Nicotinic Acetylcholine Receptors: From Structure to Function. Physiological Reviews, 89, 73-120. https://doi.org/10.1152/physrev.00015.2008
[4]  Allen, A., Carlson, S. C., Bosch, T. A., Eberly, L. E., Okuyemi, K., Nair, U., & Gordon, J. S. (2018). High-Intensity Interval Training and Continuous Aerobic Exercise Interventions to Promote Self-Initiated Quit Attempts in Young Adults Who Smoke: Feasibility, Acceptability, and Lessons Learned from a Randomized Pilot Trial. Journal of Addiction Medicine, 12, 373-380. https://doi.org/10.1097/ADM.0000000000000414
[5]  Benowitz, N. L. (2010). Nicotine Addiction. New England Journal of Medicine, 362, 2295-2303. https://doi.org/10.1056/NEJMra0809890
[6]  Bo, Y. (2013). Overview of Smoking Addiction Mechanisms. Chinese Journal of Drug Abuse Prevention and Control, 19, 275-278.
[7]  Bock, B. C., Dunsiger, S. I., Rosen, R. K., Thind, H., Jennings, E., Fava, J. L., Becker, B. M., Carmody, J., & Marcus, B. H. (2019). Yoga as a Complementary Therapy for Smoking Cessation: Results from BreathEasy, a Randomized Clinical Trial. Nicotine & Tobacco Research, 21, 1517-1523. https://doi.org/10.1093/ntr/nty212
[8]  Bodnar, R. J. (2021). Endogenous Opiates and Behavior: 2019. Peptides, 141, Article ID: 170547. https://doi.org/10.1016/j.peptides.2021.170547
[9]  Bono, F., Mutti, V., Savoia, P., Barbon, A., Bellucci, A., Missale, C., & Fiorentini, C. (2019). Nicotine Prevents Alpha-Synuclein Accumulation in Mouse and Human iPSC-Derived Dopaminergic Neurons through Activation of the Dopamine D3-Acetylcholine Nicotinic Receptor Heteromer. Neurobiology of Disease, 129, 1-12.
https://doi.org/10.1073/pnas.1707047115
[10]  Brynildsen, J. K., Lee, B. G., Perron, I. J., Jin, S., Kim, S. F., & Blendy, J. A. (2018). Activation of AMPK by Metformin Improves Withdrawal Signs Precipitated by Nicotine Withdrawal. Proceedings of the National Academy of Sciences of the United States of America, 115, 4282-4287. https://doi.org/10.1073/pnas.1707047115
[11]  Buck, J. M., O’Neill, H. C., & Stitzel, J. A. (2019). Developmental Nicotine Exposure Elicits Multigenerational Disequilibria in ProBDNF Proteolysis and Glucocorticoid Signaling in the Frontal Cortices, Striata, and Hippocampi of Adolescent Mice. Biochemical Pharmacology, 168, 438-451. https://doi.org/10.1016/j.bcp.2019.08.003
[12]  Carvalho, A. L., Caldeira, M. V., Santos, S. D., & Duarte, C. B. (2008). Role of the Brain-Derived Neurotrophic Factor at Glutamatergic Synapses. British Journal of Pharmacology, 153, S310-S324. https://doi.org/10.1038/sj.bjp.0707509
[13]  Cheung, Y. T., Lam, T. H., Chan, C. H. H., Ho, K. S., Fok, W. Y. P., Wang, M. P., & Li, W. H. C. (2020). Brief Handgrip and Isometric Exercise Intervention for Smoking Cessation: A Pilot Randomized Trial. Addictive Behaviors, 100, Article ID: 106119.
https://doi.org/10.1016/j.addbeh.2019.106119
[14]  Conner, J. M., Lauterborn, J. C., Yan, Q., Gall, C. M., & Varon, S. (1997). Distribution of Brain-Derived Neurotrophic Factor (BDNF) Protein and MRNA in the Normal Adult Rat CNS: Evidence for Anterograde Axonal Transport. Journal of Neuroscience, 17, 2295-2313. https://doi.org/10.1523/JNEUROSCI.17-07-02295.1997
[15]  Correa, M., Pardo, M., Carratalá-Ros, C., Martínez-Verdú, A., & Salamone, J. D. (2020). Preference for Vigorous Exercise versus Sedentary Sucrose Drinking: An Animal Model of Anergia Induced by Dopamine Receptor Antagonism. Behavioural Pharmacology, 31, 553-564. https://doi.org/10.1097/FBP.0000000000000556
[16]  de Baat, C., Verhoeff, M., Ahlberg, J., Manfredini, D., Winocur, E., Zweers, P., Rozema, F., Vissink, A., & Lobbezoo, F. (2020). Medications and Addictive Substances Potentially Inducing or Attenuating Sleep Bruxism and/or Awake Bruxism. Journal of Oral Rehabilitation, 48, 343-354. https://doi.org/10.1111/joor.13061
[17]  Deehan, G. A. J., Hauser, S. R., Waeiss, R. A., Knight, C. P., Toalston, J. E., Truitt, W. A., McBride, W. J., & Rodd, Z. A. (2015). Co-Administration of Ethanol and Nicotine: The Enduring Alterations in the Rewarding Properties of Nicotine and Glutamate Activity within the Mesocorticolimbic System of Female Alcohol-Preferring (P) Rats. Psychopharmacology, 232, 4293-4302. https://doi.org/10.1007/s00213-015-4056-1
[18]  Delibas, N., Doguc, D. K., Sutcu, R., Eroglu, E., & Gökalp, O. (2005). EFFECT of Nicotine on Hippocampal Nicotinic Acetylcholine Alpha7 Receptor and NMDA Receptor Subunits, 2A and, 2B Expression in Young and Old Rats. International Journal of Neuroscience, 115, 1151-1163. https://doi.org/10.1080/00207450590914437
[19]  Fehr, C., Yakushev, I., Hohmann, N., Buchholz, H. G., Landvogt, C., Deckers, H., Eberhardt, A., Kläger, M., Smolka, M. N., Scheurich, A., Dielentheis, T., Schmidt, L. G., Rösch, F., Bartenstein, P., Gründer, G., & Schreckenberger, M. (2008). Association of Low Striatal Dopamine D2 Receptor Availability with Nicotine Dependence Similar to that Seen with Other Drugs of Abuse. The American Journal of Psychiatry, 165, 507-514.
https://doi.org/10.1176/appi.ajp.2007.07020352
[20]  Feng, D. (2015). Imaging Studies of Resting-State Brain Function and Cognitive Control in Adolescents Who Smoke. Master’s Thesis, Xidian University.
[21]  Fichna, J., Janecka, A., Costentin, J., & Rego, J. C. D. (2007). The Endomorphin System and Its Evolving Neurophysiological Role. Pharmacological Reviews, 59, 88-123.
https://doi.org/10.1124/pr.59.1.3
[22]  Fischer-Smith, K. D., Houston, A. C., & Rebec, G. V. (2012). Differential Effects of Cocaine Access and Withdrawal on Glutamate Type, 1 Transporter Expression in Rat Nucleus Accumbens Core and Shell. Neuroscience, 210, 333-339.
https://doi.org/10.1016/j.neuroscience.2012.02.049
[23]  Flack, K., Pankey, C., Ufholz, K., Johnson, L., & Roemmich, J. N. (2019). Genetic Variations in the Dopamine Reward System Influence Exercise Reinforcement and Tolerance for Exercise Intensity. Behavioural Brain Research, 375, Article ID: 112148.
https://doi.org/10.1016/j.bbr.2019.112148
[24]  Gao, M., Jin, Y., Yang, K., Zhang, D., Lukas, R. J., & Wu, J. (2010). Mechanisms Involved in Systemic Nicotine-Induced Glutamatergic Synaptic Plasticity on Dopamine Neurons in the Ventral Tegmental Area. Journal of Neuroscience, 30, 13814-13825.
https://doi.org/10.1523/JNEUROSCI.1943-10.2010
[25]  Gozen, O., Nesil, T., Kanit L., Koylu, E. O., & Pogun, S. (2016). Nicotinic Cholinergic and Dopaminergic Receptor MRNA Expression in Male and Female Rats with High or Low Preference for Nicotine. The American Journal of Drug and Alcohol Abuse, 42, 556-566.
https://doi.org/10.1080/00952990.2016.1198799
[26]  Greenwood, B. N. (2019). The Role of Dopamine in Overcoming Aversion with Exercise. Brain Research, 1713, 102-108. https://doi.org/10.1016/j.brainres.2018.08.030
[27]  Greenwood, B. N., Foley, T. E., Le, T. V., Strong, P. V., Loughridge A. B., Day, H. E., & Fleshner, M. (2011). Long-Term Voluntary Wheel Running Is Rewarding and Produces Plasticity in the Mesolimbic Reward Pathway. Behavioural Brain Research, 217, 354-362.
https://doi.org/10.1016/j.bbr.2010.11.005
[28]  Herman, A. I., DeVito, E. E., Jensen, K. P., & Sofuoglu, M. (2014). Pharmacogenetics of Nicotine Addiction: Role of Dopamine. Pharmacogenomics, 15, 221-234.
https://doi.org/10.2217/pgs.13.246
[29]  Hopkins, T. J., Rupprecht, L. E., Hayes, M. R., Blendy, J. A., & Schmidt, H. D. (2012). Galantamine, An Acetylcholinesterase Inhibitor and Positive Allosteric Modulator of Nicotinic Acetylcholine Receptors, Attenuates Nicotine Taking and Seeking in Rats. Neuropsychopharmacology, 37, 2310-2321. https://doi.org/10.1038/npp.2012.83
[30]  Hou, X., Lin, X., Zhang, H., Du, Y., & Jiang, Y. (2014). Study on the Effect of Nicotine on Locomotor Fatigue in Mice. China Tobacco Science, 35, 90-92.
[31]  Hu, H. (2016). Reward and Aversion. Annual Review of Neuroscience, 39, 297-324.
https://doi.org/10.1146/annurev-neuro-070815-014106
[32]  Hu, Y., Zong, G., Liu, G., Wang, M., Rosner, B., Pan, A., Willett, W. C., Manson, J. E., Hu, F. B., & Sun, Q. (2018). Smoking Cessation, Weight Change, Type, 2 Diabetes, and Mortality. New England Journal of Medicine, 379, 623-632.
https://doi.org/10.1056/NEJMoa1803626
[33]  Huang, Z., Wu, D., Qu, X., Li, M., Zou, J., & Tan, S. (2020). BDNF and Nicotine Dependence: Associations and Potential Mechanisms. Reviews in the Neurosciences, 32, 79-91. https://doi.org/10.1515/revneuro-2020-0044
[34]  Hyman, C., Hofer, M., Barde, Y. A., Juhasz, M., Yancopoulos, G. D., Squinto, S. P., & Lindsay, R. M. (1991). BDNF Is a Neurotrophic Factor for Dopaminergic Neurons of the Substantia Nigra. Nature, 350, 230-232. https://doi.org/10.1038/350230a0
[35]  Jia, Y., Zu, S. S., & Ma, X. L. (2013). Advances in the Study of Nicotinic Acetylcholine Receptors in Tobacco-Related Cancers. China Clinical Oncology, 40, 236-238.
[36]  Jiao, Y., Jia, Y., Zhu, P., Zhang, Q., & Ma, X.-L. (2021). Advances in the Study of Nicotine Addiction Mechanisms. Basic Medicine and Clinical, 41, 1060-1065.
[37]  Keyworth, H., Georgiou, P., Zanos, P., Rueda, A. V., Chen, Y., Kitchen, I., Camarini, R., Cropley, M., & Bailey, A. (2018). Wheel Running during Chronic Nicotine Exposure Is Protective Against Mecamylamine-Precipitated Withdrawal and Up-Regulates Hippocampal α7 NACh Receptors in Mice. British Journal of Pharmacology, 175, 1928-1943.
https://doi.org/10.1111/bph.14068
[38]  Klein, A. B., Williamson, R., Santini, M. A., Clemmensen, C., Ettrup, A., Rios, M., Knudsen, G. M., & Aznar, S. (2011). Blood BDNF Concentrations Reflect Brain-Tissue BDNF Levels across Species. International Journal of Neuropsychopharmacology, 14, 347-353.
https://doi.org/10.1017/S1461145710000738
[39]  Lee, S. J., Kim, T. W., Park, H. K., Yoon, S., You, A. H., Moon, E. J., Shin, D. H., & Cho, H. (2016). Postnatal Treadmill Exercise Alleviates Prenatal Stress-Induced Anxiety in Offspring Rats by Enhancing Cell Proliferation through 5-Hydroxytryptamine 1A Receptor Activation. International Neurourology Journal, 20, S57-64.
https://doi.org/10.5213/inj.1632600.309
[40]  Lei, Z., Chi, Z., & Yang, Y. (2019). Progress in the Study of Molecular Mechanisms of Nicotine Affecting Body Metabolism. Chinese Journal of Cell Biology, 41, 1813-1821.
[41]  Leibrock, J., Lottspeich, F., Hohn, A., Hofer, M., Hengerer, B., Masiakowski, P., Thoenen, H., & Barde, Y. A. (1989). Molecular Cloning and Expression of Brain-Derived Neurotrophic Factor. Nature, 341, 149-152. https://doi.org/10.1038/341149a0
[42]  Ligresti, A., De Petrocellis, L., & Di Marzo, V. (2016). From Phytocannabinoids to Cannabinoid Receptors and Endocannabinoids: Pleiotropic Physiological and Pathological Roles through Complex Pharmacology. Physiological Reviews, 96, 1593-1659.
https://doi.org/10.1152/physrev.00002.2016
[43]  Lin, X.M., Liu, X. L., Shi, K.X., Zhang, L. T., & Zhang, W. J. (2017). Experimental Study on the Inhibitory Effect of Exercise on Striatal Glutamate Excitotoxicity in Rats in a Parkinson’s Disease Model through Modulation of the Endogenous Cannabinoid System. Journal of Tianjin Sports Institute, 32, 261-268.
[44]  Liu, Z., Sun, H., Zhang, J., Li, T., & Zhang, J. (2019a). Systematic Analysis of Exercise Interventions for Smoking Cessation: Tools, Pathways and Effects. China Sports Technology, 55, 12-20.
[45]  Liu, J., Xu, W., Hong, Q. X., & Liu, H. (2019b). Advances in the Study of the Role of the Gamma-Aminobutyric Acidergic System in Drug Addiction. Chinese Journal of Psychiatry, 52, 149-154.
[46]  Livingstone-Banks, J., Norris, E., Hartmann-Boyce, J., West, R., Jarvis, M., Chubb, E., & Hajek, P. (2019). Relapse Prevention Interventions for Smoking Cessation. Cochrane Database of Systematic Reviews, Article No. CD003999.
https://doi.org/10.1002/14651858.CD003999.pub6
[47]  Loprinzi, P. D., & Walker, J. F. (2016). Association of Longitudinal Changes of Physical Activity on Smoking Cessation among Young Daily Smokers. Journal of Physical Activity and Health, 13, 1-5. https://doi.org/10.1123/jpah.2014-0605
[48]  Lowery 3rd, C. L., Elliott, C., Cooper, A., Hadden, C., Sonon, R. N., Azadi, P., Williams, D. K., Marsh, J. D., Woulfe, D. S., & Kilic, F. (2017). Cigarette Smoking-Associated Alterations in Serotonin/Adrenalin Signaling Pathways of Platelets. Journal of the American Heart Association, 6, Article No. e005465. https://doi.org/10.1161/JAHA.116.005465
[49]  Luo, J., & Liang, J. H. (2008). Neurotransmitter Basis of Tobacco and Nicotine Addiction. Chinese Journal of Drug Dependence, 17, 88-92.
[50]  Luo, L., Li, C., Deng, Y., Wang, Y., Meng, P., & Wang, Q. (2019). High-Intensity Interval Training on Neuroplasticity, Balance between Brain-Derived Neurotrophic Factor and Precursor Brain-Derived Neurotrophic Factor in Poststroke Depression Rats. Journal of Stroke and Cerebrovascular Diseases, 28, 672-682.
https://doi.org/10.1016/j.jstrokecerebrovasdis.2018.11.009
[51]  Masiero, M., Keyworth, H., Pravettoni, G., Cropley, M., & Bailey, A. (2020). Short Bouts of Physical Activity Are Associated with Reduced Smoking Withdrawal Symptoms, But Perceptions of Intensity May Be the Key. Healthcare, 8, Article No. 425.
https://doi.org/10.3390/healthcare8040425
[52]  Mössner, R., Daniel, S., Albert, D., Heils, A., Okladnova, O., Schmitt, A., & Lesch, K. P. (2000). Serotonin Transporter Function Is Modulated by Brain-Derived Neurotrophic Factor (BDNF) but Not Nerve Growth Factor (NGF). Neurochemistry International, 36, 197-202.
https://doi.org/10.1016/S0197-0186(99)00122-9
[53]  Murphy, S. E., Wright, L. C., Browning, M., Cowen, P. J., & Harmer, C. J. (2020). A Role for, 5-HT4 Receptors in Human Learning and Memory. Psychological Medicine, 50, 2722-2730.
https://doi.org/10.1017/S0033291719002836
[54]  Niehaus, J. L., Cruz-Bermudez, N. D., & Kauer, J. A. (2009). Plasticity of Addiction: A Mesolimbic Dopamine Short-Circuit? The American Journal on Addictions, 18, 259-271.
https://doi.org/10.1080/10550490902925946
[55]  Papke, R. L. (2014). Merging Old and New Perspectives on Nicotinic Acetylcholine Receptors. Biochemical Pharmacology, 89, 1-11. https://doi.org/10.1016/j.bcp.2014.01.029
[56]  Park, S. S., Shin, M. S., Park, H. S., Kim, T. W., Kim, C. J., & Lim, B. V. (2019). Treadmill Exercise Ameliorates Nicotine Withdrawal-Induced Symptoms. Journal of Exercise Rehabilitation, 15, 383-391. https://doi.org/10.12965/jer.1938228.114
[57]  Pavey, T. G., Gartner, C. E., Coombes, J. S., & Brown, W. J. (2015). Assessing the Effectiveness of High Intensity Interval Training (HIIT) for Smoking Cessation in Women: HIIT to Quit Study Protocol. BMC Public Health, 15, Article No. 1309.
https://doi.org/10.1186/s12889-015-2631-3
[58]  Persson, A. I., Naylor, A. S., Jonsdottir, I. H., Nyberg, F., Eriksson, P. S., & Thorlin, T. (2004). Differential Regulation of Hippocampal Progenitor Proliferation by Opioid Receptor Antagonists in Running and Non-Running Spontaneously Hypertensive Rats. European Journal of Neuroscience, 19, 1847-1855.
https://doi.org/10.1111/j.1460-9568.2004.03268.x
[59]  Purani, H., Friedrichsen, S., & Allen, A. M. (2019). Sleep Quality in Cigarette Smokers: Associations with Smoking-Related Outcomes and Exercise. Addictive Behaviors, 90, 71-76.
https://doi.org/10.1016/j.addbeh.2018.10.023
[60]  Rosen, R. K., Thind, H., Jennings, E., Guthrie, K. M., Williams, D. M., & Bock, B. C. (2016). “Smoking Does Not Go with Yoga”: A Qualitative Study of Women’s Phenomenological Perceptions during Yoga and Smoking Cessation. International Journal of Yoga Therapy, 26, 33-41. https://doi.org/10.17761/1531-2054-26.1.33
[61]  Sharp, B. M., & Chen, H. (2019). Neurogenetic Determinants and Mechanisms of Addiction to Nicotine and Smoked Tobacco. European Journal of Neuroscience, 50, 2164-2179.
https://doi.org/10.1111/ejn.14171
[62]  Shimojo, G., Joseph, B., Shah, R., Consolim-Colombo, F. M., De Angelis, K., & Ulloa, L. (2019). Exercise Activates Vagal Induction of Dopamine and Attenuates Systemic Inflammation. Brain, Behavior, and Immunity, 75, 181-191.
https://doi.org/10.1016/j.bbi.2018.10.005
[63]  Spanagel, R. (2020). Cannabinoids and the Endocannabinoid System in Reward Processing and Addiction: From Mechanisms to Interventions. Dialogues in Clinical Neuroscience, 22, 241-250. https://doi.org/10.31887/DCNS.2020.22.3/rspanagel
[64]  Takahashi, K., Maejima, H., Ikuta, G., Mani, H., & Asaka, T. (2017). Exercise Combined with Low-Level GABA (A) Receptor Inhibition Up-Regulates the Expression of Neurotrophins in the Motor Cortex. Neuroscience Letters, 636, 101-107.
https://doi.org/10.1016/j.neulet.2016.10.052
[65]  Thomas, A. M., Ostroumov, A., Kimmey, B. A., Taormina, M. B., Holden, W. M., Kim, K., Brown-Mangum T., & Dani, J. A. (2018). Adolescent Nicotine Exposure Alters GABA (A) Receptor Signaling in the Ventral Tegmental Area and Increases Adult Ethanol Self-Administration. Cell Reports, 23, 68-77.
https://doi.org/10.1016/j.celrep.2018.03.030
[66]  Tiwari, R. K., Sharma, V., Pandey, R. K., & Shukla, S. S. (2020). Nicotine Addiction: Neurobiology and Mechanism. Journal of Pharmacopuncture, 23, 1-7.
https://doi.org/10.3831/KPI.2020.23.001
[67]  Trigo, J. M., Martin-García, E., Berrendero, F., Robledo, P., & Maldonado, R. (2010). The Endogenous Opioid System: A Common Substrate in Drug Addiction. Drug and Alcohol Dependence, 108, 183-194. https://doi.org/10.1016/j.drugalcdep.2009.10.011
[68]  Ussher, M. H., Faulkner, G. E. J., Angus, K., Hartmann-Boyce, J., & Taylor, A. H. (2019). Exercise Interventions for Smoking Cessation. Cochrane Database of Systematic Reviews, Article No. CD002295. https://doi.org/10.1002/14651858.CD002295.pub6
[69]  Van Rensburg, K. J., Taylor, A., Benattayallah, A., & Hodgson, T. (2012). The Effects of Exercise on Cigarette Cravings and Brain Activation in Response to Smoking-Related Images. Psychopharmacology, 221, 659-666.
https://doi.org/10.1007/s00213-011-2610-z
[70]  Vannimenus, C., Bricout, H., Le Rouzic, O., Mouawad, F., Chevalier, D., Dansin, E., Rotsaert, L., Lefebvre, G., Cottencin, O., Porte, H., Scherpereel, A., El Fahsi, A., Richard, F., & Rolland, B. (2018). Compared Characteristics of Current vs. Past Smokers at the Time of Diagnosis of a First-Time Lung or Head and Neck Cancer: A Cross-Sectional Study. BMC Cancer, 18, Article No. 372. https://doi.org/10.1186/s12885-018-4253-5
[71]  Varani, A. P., Pedrón, V. T., Aon, A. J., Höcht, C., Acosta, G. B., Bettler, B., & Balerio, G. N. (2018). Nicotine-Induced Molecular Alterations Are Modulated by GABA (B) Receptor Activity. Addiction Biology, 23, 230-246. https://doi.org/10.1111/adb.12506
[72]  Vlachou, S., & Panagis, G. (2014). Regulation of Brain Reward by the Endocannabinoid System: A Critical Review of Behavioral Studies in Animals. Current Pharmaceutical Design, 20, 2072-2088. https://doi.org/10.2174/13816128113199990433
[73]  Wang, C. Z., Meng, M. L., Fei, H., & Xie, F. (2017). Advances in the Study of Nicotinic Acetylcholine Receptors and Schizophrenia. Journal of Psychiatry, 30, 378-381.
[74]  Warner, K. E., & Schroeder, S. A. (2017). FDA’s Innovative Plan to Address the Enormous Toll of Smoking. JAMA, 318, 1755-1756. https://doi.org/10.1001/jama.2017.14336
[75]  Wittenberg, R. E., Wolfman, S. L., De Biasi, M., & Dani, J. A. (2020). Nicotinic Acetylcholine Receptors and Nicotine Addiction: A Brief Introduction. Neuropharmacology, 177, Article ID: 108256.
https://doi.org/10.1016/j.neuropharm.2020.108256
[76]  Wu, W. B., & Liu, Z. B. (2004). Effects of Different Load Training on Hypothalamic and Plasma β-Endorphin Levels in Rats. China Clinical Rehabilitation, 1126-1127.
[77]  Zhou, Y., & Zhou, C. (2018). Effects and Mechanisms of Exercise on Learning and Memory Abilities in Nicotine Withdrawal Rats. Chinese Journal of Sports Medicine, 37, 224-232.
[78]  Zoladz, J. A., & Pilc, A. (2010). The Effect of Physical Activity on the Brain Derived Neurotrophic Factor: From Animal to Human Studies. Journal of Physiology and Pharmacology, 61, 533-541.
[79]  Zvolensky, M. J., Rosenfield, D., Garey, L., Kauffman, B. Y., Langdon, K. J., Powers, M. B., Otto, M. W., Davis, M. L., Marcus, B. H., Church, T. S., Frierson, G. M., Hopkins, L. B., Paulus, D. J., Baird, S. O., & Smits, J. A. J. (2018). Does Exercise Aid Smoking Cessation through Reductions in Anxiety Sensitivity and Dysphoria? Health Psychology, 37, 647-657.
https://doi.org/10.1037/hea0000588

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