Modern Views on the Neuropeptide Oxytocin. Part II. Oxytocin in the Process of Evolution. The Role of Oxytocin in the Behavioural, Somatic and Autonomic Functions of Humans and Animals (Review)
DOI:
https://doi.org/10.37482/2687-1491-Z245Keywords:
oxytocin, oxytocin receptors, oxytocinergic system, neuropeptides, human and animal evolution, social behaviour, aggressionAbstract
The article presents current views of scientists on the physiological effects of oxytocin, its influence on social behaviour and on the psychological state of humans and animals. It is known that at the early stages of invertebrate evolution, signals were transmitted through oxytocin-like substances. In the reviewed papers, the development of oxytocin receptors in vertebrates is considered. Facts are presented about the control the oxytocinergic neurotransmitter system and its homologues exert over social behaviour, both in mammals and other vertebrates. The evolution of communicative behaviour associated with the influence of oxytocin is traced. A number of studies have demonstrated a link of the oxytocinergic neurotransmitter system with aggressive behaviour. A correlation has been established between the level of expression of oxytocin receptors in the brain and partner preference. The effect of oxytocin on the formation of social bonds between humans and domestic animals has been described. In domestic animals, oxytocin concentrations have been shown to be positively correlated with the number of contacts with the owner. The anti-stress and anxiolytic effects of this neuropeptide blocking the effects of the main stress hormone, cortisol, have been detected. Thus, oxytocin has the potential for treatment of stress and its consequences. The oxytocinergic system can modulate the mechanisms of emotions and can be used to alleviate social dysfunction in mental illnesses, including schizophrenia and autism spectrum disorders. The studied effects of oxytocin confirm the special role of this ancient hormone in anthropogenesis and its importance for human health and socialization, as well as demonstrate its potential use in pharmacotherapy for a number of pathologies.
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References
Knobloch H.S., Grinevich V. Evolution of Oxytocin Pathways in the Brain of Vertebrates // Front. Behav. Neurosci. 2014. Vol. 8, Art. No 31. https://doi.org/10.3389/fnbeh.2014.00031
Grinevich V., Desarménien M.G., Chini B., Tauber M., Muscatelli F. Ontogenesis of Oxytocin Pathways in the Mammalian Brain: Late Maturation and Psychosocial Disorders // Front. Neuroanat. 2014. Vol. 8. Art. No 164. https://doi.org/10.3389/fnana.2014.00164
Caldwell H.K. Oxytocin and Vasopressin: Powerful Regulators of Social Behavior // Neuroscientist. 2017. Vol. 23. No 5. Р. 517–528. https://doi.org/10.1177/1073858417708284
Jurek B., Slattery D.A., Hiraoka Y., Liu Y., Nishimori K., Aguilera G., Neumann I.D., van den Burg E.H. Oxytocin Regulates Stress-Induced Crf Gene Transcription Through CREB-Regulated Transcription Coactivator 3 // J. Neurosci. 2015. Vol. 35, No 35. P. 12248–12260. https://doi.org/10.1523/JNEUROSCI.1345-14.2015
Grinevich V., Knobloch-Bollmann H.S., Eliava M., Busnelli M., Chini B. Assembling the Puzzle: Pathways of Oxytocin Signaling in the Brain // Biol. Psychiatry. 2016. Vo l. 79, No 3. P. 155–164. https://doi.org/10.1016/j.biopsych.2015.04.013
Ясенявская А.Л., Самотруева М.А., Цибизова А.А., Мясоедов Н.Ф., Андреева Л.А. Влияние нейропептидов на психоэмоциональное состояние в условиях «социального» стресса // Человек и его здоровье. 2020. No 3. С. 37–45. https://doi.org/10.21626/vestnik/2020-3/05
Calcagnoli F., Meyer N., de Boer S.F., Althaus M., Koolhaas J.M. Chronic Enhancement of Brain Oxytocin Levels Causes Enduring Anti-Aggressive and Pro-Social Explorative Behavioral Effects in Male Rats // Horm. Behav. 2014. Vol. 65, No 4. P. 427–433. https://doi.org/10.1016/j.yhbeh.2014.03.008
Nagasawa M., Mitsui S., En S., Ohtani N., Ohta M., Sakuma Y., Onaka T., Mogi K., Kikusui T. Oxytocin-Gaze Positive Loop and the Coevolution of Human-Dog Bonds // Science. 2015. Vol. 348, No 6232. P. 333–336. https://doi.org/10.1126/science.1261022
Гербек Ю.Э., Гулевич Р.Г., Шепелева Д.В., Гриневич В.В. Окситоцин: коэволюция человека и доместицированных животных // Вавилов. журн. генетики и селекции. 2016. Т. 20, No 2. С. 220–227. https://doi.org/10.18699/VJ16.145
Demirci E., Ozmen S., Kilic E., Oztop D.B. The Relationship Between Aggression, Empathy Skills and Serum Oxytocin Levels in Male Children and Adolescents with Attention Deficit and Hyperactivity Disorder // Behav. Pharmacol. 2016. Vol. 27, No 8. Р. 681–688. https://doi.org/10.1097/FBP.0000000000000234
Alaerts K., Steyaert J., Vanaudenaerde B., Wenderoth N., Bernaerts S. Changes in Endogenous Oxytocin Levels After Intranasal Oxytocin Treatment in Adult Men with Autism: An Exploratory Study with Long-Term Follow-Up // Eur. Neuropsychopharmacol. 2021. Vol. 43. Р. 147–152. https://doi.org/10.1016/j.euroneuro.2020.11.014
Giel K., Zipfel S., Hallschmid M. Oxytocin and Eating Disorders: A Narrative Review on Emerging Findings and Perspectives // Curr. Neuropharmacol. 2018. Vol. 16, No 8. Р. 1111–1121. https://doi.org/10.2174/1570159X15666171128143158
Amico J.A., Mantella R.C., Vollmer R.R., Li X. Anxiety and Stress Responses in Female Oxytocin Deficient Mice // J. Neuroendocrinol. 2004. Vol. 16, No 4. Р. 319–324. https://doi.org/10.1111/j.0953-8194.2004.01161.x
Bartz J.A., Nitschke J.P., Krol S.A., Tellier P.-P. Oxytocin Selectively Improves Empathic Accuracy: A Replication in Men and Novel Insights in Women // Biol. Psychiatry Cogn. Neurosci. Neuroimaging. 2019. Vol. 4, No 12. Р. 1042–1048. https://doi.org/10.1016/j.bpsc.2019.01.014
Kerem L., Lawson E.A. The Effects of Oxytocin on Appetite Regulation, Food Intake and Metabolism in Humans // Int. J. Mol. Sci. 2021. Vol. 22, No 14. Art. No 7737. https://doi.org/10.3390/ijms22147737
Ong Z.Y., Alhadeff A.L., Grill H.J. Medial Nucleus Tractus Solitarius Oxytocin Receptor Signaling and Food Intake Control: The Role of Gastrointestinal Satiation Signal Processing // Am. J. Physiol. Regul. Integr. Comp. Physiol. 2015. Vol. 308, No 9. Р. R800–R806. https://doi.org/10.1152/ajpregu.00534.2014
Roberts Z.S., Wolden-Hanson T., Matsen M.E., Ryu V., Vaughan C.H., Graham J.L., Havel P.J., Chukri D.W., Schwartz M.W., Morton G.J., Blevins J.E. Chronic Hindbrain Administration of Oxytocin Is Sufficient to Elicit Weight Loss in Diet-Induced Obese Rats // Am. J. Physiol. Regul. Integr. Comp. Physiol. 2017. Vol. 313, No 4. Р. R357–R371. https://doi.org/10.1152/ajpregu.00169.2017
Niu J., Tong J., Blevins J.E. Oxytocin as an Anti-Obesity Treatment // Front. Neurosci. 2021. Vol. 15. Art. No 743546. https://doi.org/10.3389/fnins.2021.743546
Elabd C., Cousin W., Upadhyayula P., Chen R.Y., Chooljian M.S., Li J., Kung S., Jiang K.P., Conboy I.M. Oxytocin Is an Age-Specific Circulating Hormone That Is Necessary for Muscle Maintenance and Regeneration // Nat. Commun. 2014. Vol. 5. Art. No 4082. https://doi.org/10.1038/ncomms5082
McCormack S.E., Blevins J.E., Lawson E.A. Metabolic Effects of Oxytocin // Endocr. Rev. 2020. Vol. 41, No 2. Р. 121–145. https://doi.org/10.1210/endrev/bnz012
Carmassi C., Marazziti D., Mucci F., Vecchia A.D., Barberi F.M., Baroni S., Giannaccini G., Palego L., Massimetti G., Dell’Osso L. Decreased Plasma Oxytocin Levels in Patients with PTSD // Front. Psychol. 2021. Vol. 12. Art. No 612338. https://doi.org/10.3389/fpsyg.2021.612338
Bukovskaya O., Shmukler A. Oxytocin and Social Cognitions in Schizophrenia: A Systematic Review // Psychiatr. Q. 2016. Vol. 87, No 3. P. 521–543. https://doi.org/10.1007/s11126-015-9407-x
Lee H., Jang M., Noh J. Oxytocin Attenuates Aversive Response to Nicotine and Anxiety-Like Behavior in Adolescent Rats // Neurosci. Res. 2017. Vol. 115. Р. 29–36. https://doi.org/10.1016/j.neures.2016.11.007
Lehner M., Skórzewska A., Wisłowska-Stanek A. Sex-Related Predisposition to Post-Traumatic Stress Disorder Development – the Role of Neuropeptides // Int. J. Environ. Res. Public Health. 2021. Vol. 19, No 1. Art. No 314. https://doi.org/10.3390/ijerph19010314
Froemke R.C., Young L.J. Oxytocin, Neural Plasticity, and Social Behavior // Annu. Rev. Neurosci. 2021. Vol. 44. Р. 359–381. https://doi.org/10.1146/annurev-neuro-102320-102847
Marsh N., Marsh A.A., Lee M.R., Hurlemann R. Oxytocin and the Neurobiology of Prosocial Behavior // Neuroscientist. 2021. Vol. 27, No 6. Р. 604–619. https://doi.org/10.1177/1073858420960111
Vannucchi G., Masi G., Toni C., Dell’Osso L., Marazziti D., Perugi G. Clinical Features, Developmental Course, and Psychiatric Comorbidity of Adult Autism Spectrum Disorders // CNS Spectr. 2014. Vol. 19, No 2. Р. 157–164. https://doi.org/10.1017/S1092852913000941
Aoki Y., Yahata N., Watanabe T., Takano Y., Kawakubo Y., Kuwabara H., Iwashiro N., Natsubori T., Inoue H., Suga M., Takao H., Sasaki H., Gonoi W., Kunimatsu A., Kasai K., Yamasue H. Oxytocin Improves Behavioural and Neural Deficits in Inferring Others’ Social Emotions in Autism // Brain. 2014. Vol. 137, No 11. Р. 3073–3086. https://doi.org/10.1093/brain/awu231
Aydogan G., Jobst A., Loy F., Dehning S., Zill P., Müller N., Kocher M. The Effect of Oxytocin on Group Formation and Strategic Thinking in Men // Horm. Behav. 2018. Vol. 100. P. 100–106. https://doi.org/10.1016/j.yhbeh.2018.02.003