Recent advances in genetics of aggressive behavior
https://doi.org/10.18699/VJ18.415
Abstract
About the Authors
J. D. DavydovaRussian Federation
Ufa.
S. S. Litvinov
Russian Federation
Ufa.
R. F. Enikeeva
Russian Federation
Ufa.
S. B. Malykh
Russian Federation
Moscow.
E. K. Khusnutdinova
Russian Federation
Ufa.
References
1. Albaugh M.D., Harder V.S., Althoff R.R., Rettew D.C., Ehli E.A., Lengyel-Nelson T., Davies G.E., Ayer L., Sulman J., Stanger C., Hudziak J.J. COMT Val158Met genotype as a risk factor for problem behaviors in youth. J. Am. Acad. Child Adolesc. Psychiatry. 2010;49(8):841-849. DOI 10.1016/j.jaac.2010.05.015.
2. Avinun R., Davidov M., Mankuta D., Knafo-Noam A. Predicting the use of corporal punishment: Child aggression, parent religiosity, and the BDNF gene. Aggress. Behav. 2018;44(2):165-175. DOI 10.1002/ab.21740.
3. Baron R., Richardson D. (Eds.) Human Aggression. New York: Plenum Publ., 1994. Russ. ed.: Baron R., Richardson D. Aggression. St. Petersburg: Piter Publ., 2001. (in Russian)
4. Beden O., Senol E., Atay S., Ak H., Altintoprak A.E., Kiyan G.S., Petin B., Yaman U., Aydin H.H. TPH1 A218 allele is associated with suicidal behavior in Turkish population. Leg. Med. (Tokyo). 2016;21:15-18. DOI 10.1016/j.legalmed.2016.05.005.
5. Bereczki E., Branca R.M., Francis P.T., Pereira J.B., Baek J.H., Hortobágyi T., Winblad B., Ballard C., Lehtiö J., Aarsland D. Synaptic markers of cognitive decline in neurodegenerative diseases: a proteomic approach. Brain. 2018;141(2):582-595. DOI 10.1093/brain/awx352.
6. Blanco E.A., Duque L.M., Rachamallu V., Yuen E., Kane J.M., Gallego J.A. Predictors of aggression in 3.322 patients with affective disorders and schizophrenia spectrum disorders evaluated in an emergency department setting. Schizophr. Res. 2018;195:136-141. DOI 10.1016/j.schres.2017.10.002.
7. Bragin A.O., Saik O.V., Chadaeva I.V., Demenkov P.S., Markel A.L., Orlov Yu.L., Rogaev E.I., Lavrik I.N., Ivanisenko V.A. Role of apoptosis genes in aggression revealed using combined analysis of ANDSystem gene networks, expression and genomic data in grey rats with aggressive behavior. Vavilovskii Zhurnal Genetiki i Selektsii = Vavilov Journal of Genetics and Breeding. 2017; 21(8):911919. DOI 10.18699/VJ17.312. (in Russian)
8. Brevik E.J., van Donkelaar M.M., Weber H., Sánchez-Mora C., Jacob C., Rivero O., Kittel-Schneider S., Garcia-Martínez I., Aebi M., van Hulzen K., Cormand B., Ramos-Quiroga J.A., Lesch K.P., Reif A., Ribasés M., Franke B., Posserud M.B., Johansson S., Lundervold A.J., Haavik J., Zayats T. Genome-wide analyses of aggressiveness in attention-deficit hyperactivity disorder. Am. J. Med. Genet. B Neuropsychiatr. Genet. 2016;171(5):733-747. DOI 10.1002/ajmg.b.32434.
9. Butovskaya M.L., Lazebny O.E., Vasilyev V.A., Dronova D.A., Karelin D.V., Mabulla A.Z., Shibalev D.V., Shackelford T.K., Fink B., Ryskov A.P. Androgen receptor gene polymorphism, aggression, and reproduction in tanzanian foragers and pastoralists. PLoS One. 2015;10(8):e0136208. DOI 10.1371/journal.pone.0136208.
10. Calcagnoli F., de Boer S.F., Beiderbeck D.I., Althaus M., Koolhaas J.M., Neumann I.D. Local oxytocin expression and oxytocin receptor binding in the male rat brain is associated with aggressiveness. Behav. Brain Res. 2014;261:315-322. DOI 10.1016/j. bbr.2013.12.050.
11. Cherepkova E.V., Aftanas L.I., Maksimov N., Menshanov P. Frequency of 3′ VNTR polymorphism in the dopamine transporter gene SLC6A3 in humans predisposed to antisocial behavior. Bull. Exp. Biol. Med. 2016;162(1):82-85. DOI 10.1007/s10517-016-3551-7.
12. Cherepkova E.V., Maksimov V.N., Aftanas L.I., Menshanov P.N. Genotype and haplotype frequencies of the DRD4 VNTR polymorphism in the men with no history of ADHD, convicted of violent crimes. J. Crim. Justice. 2015;43(6):464-469. DOI 10.1016/j.jcrimjus.2015. 10.002.
13. Cicchetti D., Rogosch F.A., Thibodeau E. The effects of child maltreatment on early signs of antisocial behavior: genetic moderation by tryptophan hydroxylase, serotonin transporter, and monoamine oxidase-a-genes. Dev. Psychopathol. 2012;24(3):907-928. DOI 10.1017/S0954579412000442.
14. Dmitrieva T.B., Shostakovich B.V. Aggression and Mental Health. St. Petersburg: Yuridichesky Center Publ., 2002. (in Russian)
15. Gansler D.A., McLaughlin N.C., Iguchi L., Jerram M., Moore D.W., Bhadelia R., Fulwiler C. A multivariate approach to aggression and the orbital frontal cortex in psychiatric patients. Psychiatry Res. 2009;171(3):145-154. DOI 10.1016/j.pscychresns.2008.03.007.
16. Georgiev A.V., Klimczuk A.C.E., Traficonte D.M., Maestripieri D. When violence pays: a cost-benefit analysis of aggressive behavior in animals and humans. Evol. Psychol. 2013;11(3):678-699.
17. Gorodetsky E., Carli V., Sarchiapone M., Roy A., Goldman D., Enoch M.A. Predictors for self-directed aggression in italian prisoners include externalizing behaviors, childhood trauma and the serotonin transporter gene polymorphism 5-HTTLPR. Genes Brain Behav. 2016;15(5):465-473. DOI 10.1111/gbb.12293.
18. Guan X., Dong Z.Q., Tian Y.Y., Wu L.N., Gu Y., Hu Z.Q., Zhang X. Lack of association between brain-derived neurotrophic factor Val66Met polymorphism and aggressive behavior in schizophrenia. Psychiatry Res. 2014;215(1):244-245. DOI 10.1016/j.psychres.2013.10.017.
19. Gurskaya I.Y. Methodological problems in the research of aggressive behavior. Uchenye Zapiski Pedagogicheskogo Instituta Saratovskogo Gosudarstvennogo Universiteta. Ser. Psychologiya. Pedagogica = Scientific Reports of the Chernyshevskiy Pedagogical Institute, Saratov State University, Ser: Psychology. Pedagogics. 2008;1(34):13-17. (in Russian)
20. Gusev E.I., Konovalova A.N., Skvortsova V.I., Geht A.B. Neuro logy: The National Guide. Moscow: GJeOTAR-Media Publ., 2009. (in Russian)
21. Gutzler S.J., Karom M., Erwin W.D., Albers H.E. Arginine-vasopressin and the regulation of aggression in female Syrian hamsters (Mesocricetus auratus). Eur. J. Neurosci. 2010;31(9):1655-1663. DOI 10.1111/j.1460-9568.2010.07190.x.
22. Hemmings S.M.J., Xulu K., Sommer J., Hinsberger M., MalanMuller S., Tromp G., Elbert T., Weierstall R., Seedat S. Appetitive and reactive aggression are differentially associated with the STin2 genetic variant in the serotonin transporter gene. Sci. Rep. 2018;8: 6714. DOI 10.1038/s41598-018-25066-8.
23. Holz N., Boecker R., Buchmann A.F., Blomeyer D., Baumeister S., Hohmann S., Jennen-Steinmetz C., Wolf I., Rietschel M., Witt S.H., Plichta M.M., Meyer-Lindenberg A., Schmidt M.H., Esser G., Banaschewski T., Brandeis D., Laucht M. Evidence for a sex-dependent MAOA × Childhood stress interaction in the neural circuitry of aggression. Cereb. Cortex. 2016;26(3):904-914. DOI 10.1093/cercor/bhu249.
24. Hong C.J., Liou Y.J., Tsai S.J. Effects of BDNF polymorphisms on brain function and behavior in health and disease. Brain Res. Bull. 2011;86(5-6):287-297. DOI 10.1016/j.brainresbull.2011.08.019.
25. Hovey D., Lindstedt M., Zettergren A., Jonsson L., Johansson A., Melke J., Kerekes N., Anckarsäter H., Lichtenstein P., Lundström S., Westberg L. Antisocial behavior and polymorphisms in the oxytocin receptor gene: findings in two independent samples. Mol. Psychiatry. 2016;21(7):983-988. DOI 10.1038/mp.2015.144.
26. Hygen B.W., Belsky J., Stenseng F., Lydersen S., Guzey I.C., Wichstrøm L. Child exposure to serious life events, COMT, and aggression: Testing differential susceptibility theory. Dev. Psychol. 2015; 51(8):1098-1104. DOI 10.1037/dev0000020.
27. Ilchibaeva T.V., Tsybko A.S., Kozhemyakina R.V., Naumenko V.S. Expression of apoptosis genes in the brain of rats with genetically defined fear-induced aggression. Molecular Biology (Moscow). 2016;50(5):719-724. DOI 10.1134/S0026893316030079.
28. Jager A., Amiri H., Bielczyk N., van Heukelum S., Heerschap A., Aschrafi A., Poelmans G., Buitelaar J.K., Kozicz T., Glennon J.C. Cortical control of aggression: GABA signalling in the anterior cingulate cortex. Eur. Neuropsychopharmacol. 2017. DOI 10.1016/j.euroneuro.2017.12.007.
29. Kazantseva A.V., Khusnutdinova E.K. Genes vs Environment, or What Controls Our Behavior. Ufa: Bashkirian State University, 2017. (in Russian)
30. Kiive E., Laas K., Vaht M., Veidebaum T., Harro J. Stressful life events increase aggression and alcohol use in young carriers of the GABRA2 rs279826/rs279858 A-allele. Eur. Neuropsychopharmacol. 2017;27(8):816-827. DOI 10.1016/j.euroneuro.2017.02.003.
31. King A.R., Ratzak A., Ballantyne S., Knutson S., Russell T.D., Pogalz C.R., Breen C.M. Differentiating corporal punishment from physical abuse in the prediction of lifetime aggression. Agress. Behav. 2018;44(3):306-315. DOI 10.1002/ab.21753.
32. Koh K.B., Kim C.H., Choi E.H., Lee Y.J., Seo W.Y. Effect of tryptophan hydroxylase gene polymorphism on aggression in major depressive disorder and undifferentiated somatoform disorder. J. Clin. Psychiatry. 2012;73(5):e574-e579. DOI 10.4088/JCP.11m07342.
33. Kretschmer T., Vitaro F., Barker E.D. The association between peer and own aggression is moderated by the BDNF Val-Met polymorphism. J. Res. Adolesc. 2014;24(1):177-185. DOI 10.1111/jora.12050.
34. Laas K., Kiive E., Mäestu J., Vaht M., Veidebaum T., Harro J. Nice guys: Homozygocity for the TPH2 –703G/T (rs4570625) minor allele promotes low aggressiveness and low anxiety. J. Affect Disord. 2017;215:230-236. DOI 10.1016/j.jad.2017.03.045.
35. Lee R., Ferris C., Van de Kar L.D., Coccaro E.F. Cerebrospinal fluid oxytocin, life history of aggression, and personality disorder. Psychoneuroendocrinology. 2009;34(10):1567-1573. DOI 10.1016/j. psyneuen.2009.06.002.
36. Lopez-Castroman J., Jaussent I., Beziat S., Guillaume S., Baca-Garcia E., Genty C., Olié E., Courtet P. Increased severity of suicidal behavior in impulsive aggressive patients exposed to familial adversities. Psychol. Med. 2014;44(14):3059-3068. DOI 10.1017/S0033291714000646.
37. MacKenzie A., Quinn J. A serotonin transporter gene intron 2 polymorphic region, correlated with affective disorders, has allele-dependent differential enhancer-like properties in the mouse embryo. Proc. Natl. Acad. Sci. USA. 1999;96(26):15251-15255.
38. Malik A.I., Zai C.C., Berall L., Abu Z., Din F., Nowrouzi B., Chen S., Beitchman J.H. The role of genetic variants in genes regulating the oxytocin-vasopressin neurohumoral system in childhood-onset aggression. Psychiatr. Genet. 2014;24(5):201-210. DOI 10.1097/YPG.0000000000000044.
39. Meyer-Bahlburg H.F.L. Sex chromosomes and aggression in humans. In: Brain P.P., Benton D. (Eds.) The Biology of Aggression. Rockville: MD, 1981;109-123.
40. Mick E., McGough J., Deutsch C.K., Frazier J.A., Kennedy D., Goldberg R.J. Genome-Wide Association Study of proneness to anger. PLoS One. 2014;9(1):e87257. DOI 10.1371/journal.pone.0087257.
41. Miczek K.A., de Almeida R.M., Kravitz E.A., Rissman E.F., de Boer S.F., Raine A. Neurobiology of escalated aggression and violence. J. Neurosci. 2007;27(44):11803-11806. DOI 10.1523/JNEUROSCI.3500-07.2007.
42. Nagata T., Kobayashi N., Shinagawa S., Yamada H., Kondo K., Nakayama K. Plasma BDNF levels are correlated with aggressiveness in patients with amnestic mild cognitive impairment or Alzheimer disease. J. Neural. Transm. (Vienna). 2014;121(4):433-441. DOI 10.1007/s00702-013-1121-y.
43. Pappa I., St Pourcain B., Benke K., Cavadino A., Hakulinen C., Nivard M.G., Nolte I.M., Tiesler C.M., Bakermans-Kranenburg M.J., Davies G.E., Evans D.M., Geoffroy M.C., Grallert H., GroenBlok huis M.M., Hudziak J.J., Kemp J.P., Keltikangas-Järvinen L., McMahon G., Mileva-Seitz V.R., Motazedi E., Power C., Raitakari O.T., Ring S.M., Rivadeneira F., Rodriguez A., Scheet P.A., Seppälä I., Snieder H., Standl M., Thiering E., Timpson N.J., Veenstra R., Velders F.P., Whitehouse A.J., Smith G.D., Heinrich J., Hypponen E., Lehtimäki T., Middeldorp C.M., Oldehinkel A.J., Pennell C.E., Boomsma D.I., Tiemeier H. A genome-wide approach to children’s aggressive behavior: The EAGLE consortium. Am. J. Med. Genet. B Neuropsychiatr. Genet. 2015;171(5):562-572. DOI 10.1002/ajmg.b.32333.
44. Pardini D.A., Raine A., Erickson K., Loeber R. Lower amygdala volume in men is associated with childhood aggression, early psychopathic traits, and future violence. Biol. Psychiatry. 2014;75(1):73-80. DOI 10.1016/j.biopsych.2013.04.003.
45. Parrott A.M., Mathews M.B. Novel rapidly evolving hominid RNAs bind nuclear factor 90 and display tissue-restricted distribution. Nucleic Acids Res. 2007;35(18):6249-6258. DOI 10.1093/nar/gkm668.
46. Popova N.K., Ilchibaeva T.V., Naumenko V.S. Neurotrophic factors (BDNF and GDNF) and the serotonergic system of the brain. Biochemistry (Moscow). 2017;82(3):308-317. DOI 10.1134/ S0006297917030099.
47. Qadeer M.I., Amar A., Mann J.J., Hasnain S. Polymorphisms in dopaminergic system genes; association with criminal behavior and selfreported aggression in violent prison inmates from Pakistan. PLoS One. 2017;12(6):e0173571. DOI 10.1371/journal.pone.0173571.
48. Ragozinskaya V.G. Features of EEG spectral power in autoaggression. Izvestiya Vysshih Uchebnykh Zavedenij. Uralskij Region = Proceedings of Higher Educational Institutions. Ural Region. 2015; 2:97-104. (in Russian)
49. Rajender S., Pandu G., Sharma J.D., Gandhi K.P., Singh L., Thangaraj K. Reduced CAG repeats length in androgen receptor gene is associated with violent criminal behavior. Int. J. Legal Med. 2008; 122(5):367-372. DOI 10.1007/s00414-008-0225-7.
50. Rautiainen M.R., Paunio T., Repo-Tiihonen E., Virkkunen M., Ollila H.M., Sulkava S., Jolanki O., Palotie A., Tiihonen J. Genomewide association study of antisocial personality disorder. Transl. Psychiatry. 2016;6(9):e883. DOI 10.1038/tp.2016.155.
51. Rosstat: Russian Federal State Statistics Service. 2017. Available at: http://www.gks.ru/wps/wcm/connect/rosstat_main/rosstat/ru/statistics/population/ (in Russian)
52. Rujescu D., Giegling I., Mandelli L., Schneider B., Hartmann A.M., Schnabel A., Maurer K., Möller H.J., Serretti A. NOS-I and -III gene variants are differentially associated with facets of suicidal behavior and aggression-related traits. Am. J. Med. Genet. B Neuropsychiatr. Genet. 2008;147B(1):42-48. DOI 10.1002/ajmg.b.30569. S
53. chlomer G.L., Cleveland H.H., Vandenbergh D.J., Feinberg M.E., Neiderhiser J.M., Greenberg M.T., Spoth R., Redmond C. Developmental differences in early adolescent aggression: a gene × environment × intervention analysis. J. Youth Adolesc. 2015;44(3):581-597. DOI 10.1007/s10964-014-0198-4.
54. Schlüter T., Winz O., Henkel K., Eggermann T., Mohammadkhani-Shali S., Dietrich C., Heinzel A., Decker M., Cumming P., Zerres K., Piel M., Mottaghy F.M., Vernaleken I. MAOA-VNTR polymorphism modulates context-dependent dopamine release and aggressive behavior in males. Neuroimage. 2016;125:378-385. DOI 10.1016/j.neuroimage.2015.10.031.
55. Siddiqui T.J., Tari P.K., Connor S.A., Zhang P., Dobie F.A., She K., Kawabe H., Wang Y.T., Brose N., Craig A.M. An LRRTM4-HSPG complex mediates excitatory synapse development on dentate gyrus granule cells. Neuron. 2013;79(4):680-695. DOI 10.1016/j.neuron. 2013.06.029.
56. Singh J.P., Volavka J., Czobor P., Van Dorn R.A. A meta-analysis of the Val158Met COMT polymorphism and violent behavior in schizophrenia. PLoS One. 2012;7(8):e43423. DOI 10.1371/journal. pone.0043423.
57. Stochholm K., Bojesen A., Jensen A.J., Juul S., Gravholt C.H. Criminality in men with Klinefelter’s syndrome and XYY syndrome: a cohort study. BMJ Open. 2012;2:e000650. DOI 10.1136/bmjopen- 2011-000650.
58. Takeuchi H., Tomita H., Taki Y., Kikuchi Y., Ono C., Yu Z., Sekiguchi A., Nouchi R., Kotozaki Y., Nakagawa S., Miyauchi C.M., Iizuka K., Yokoyama R., Shinada T., Yamamoto Y., Hanawa S., Araki T., Hashizume H., Kunitoki K., Sassa Y., Kawashima R. Cognitive and neural correlates of the 5-repeat allele of the dopamine D4 receptor gene in a population lacking the 7-repeat allele. Neuroimage. 2015; 110:124-35. DOI 10.1016/j.neuroimage.2015.01.053.
59. Tielbeek J.J., Johansson A., Polderman T.J.C., Rautiainen M.R., Jansen P., Taylor M., Tong X., Lu Q., Burt A.S., Tiemeier H., Viding E., Plomin R., Martin N.G., Heath A.C., Madden P.A.F., Montgomery G., Beaver K.M., Waldman I., Gelernter J., Kranzler H.R., Farrer L.A., Perry J.R.B., Munafò M., LoParo D., Paunio T., Tiihonen J., Mous S.E., Pappa I., de Leeuw C., Watanabe K., Hammer schlag A.R., Salvatore J.E., Aliev F., Bigdeli T.B., Dick D., Faraone S.V., Popma A., Medland S.E., Posthuma D. GenomeWide As sociation Studies of a broad spectrum of antisocial behavior. JAMA Psychiatry. 2017;74(12):1242-1250. DOI 10.1001/jamapsychiatry.2017.3069.
60. Tielbeek J.J., Medland S.E., Benyamin B., Byrne E.M., Heath A.C., Madden P.A., Martin N.G., Wray N.R., Verweij K.J. Unraveling the genetic etiology of adult antisocial behavior: a genome-wide association study. PLoS One. 2012;7(10):e45086. DOI 10.1371/journal. pone.0045086.
61. Tiihonen J., Rautiainen M.R., Ollila H.M., Repo-Tiihonen E., Virkkunen M., Palotie A., Pietiläinen O., Kristiansson K., Joukamaa M., Lauerma H., Saarela J., Tyni S., Vartiainen H., Paananen J., Goldman D., Paunio T. Genetic background of extreme violent behavior. Mol. Psychiatry. 2015;20(6):786-792. DOI 10.1038/mp.2014.130.
62. Tkachenko O.N. Genetic correlations of a person’s aggression: literature review. Socialno-Ecologicheskie Tekhnologii = Environment and Human: Environmental Studies. 2016;3:68-86. (in Russian)
63. Tuvblad C., Narusyte J., Grann M., Sarnecki J., Lichtenstein P. The genetic and environmental etiology of antisocial behavior from childhood to emerging adulthood. Behav. Genet. 2011;41(5):629-640. DOI 10.1007/s10519-011-9463-4.
64. Tyuzikov I.A., Kalinchenko S.Yu., Vorslov L.O., Tishova Yu.A. Vasopressin: nonclassical effects and the role in the development of age-related diseases. Effectivnaya Pharmacotherapiya = Effective Pharmacotherapy. 2015;26:38-50. (in Russian)
65. United Nations Office on Drugs and Crime “UNODC”: Reports on world crime trends. 2017. Available at: https://www.unodc.org/docu ments/data-and-analysis/statistics/crime/reports-on-worldcrime-trends.html
66. Vaillancourt K.L., Dinsdale N.L., Hurd P.L. Estrogen receptor 1 promoter polymorphism and digit ratio in men. Am. J. Hum. Biol. 2012; 24(5):682-689. DOI 10.1002/ajhb.22297.
67. Van Donkelaar M.M.J., Hoogman M., Pappa I., Tiemeier H., Buitelaar J.K., Franke B., Bralten J. Pleiotropic contribution of MECOM and AVPR1A to aggression and subcortical brain volumes. Front. Behav. Neurosci. 2018;12:61. DOI 10.3389/fnbeh.2018.00061.
68. Van Ijzendoorn M.H., Belsky J., Bakermans-Kranenburg M.J. Serotonin transporter genotype 5HTTLPR as a marker of differential susceptibility? A meta-analysis of child and adolescent gene-by-environment studies. Transl. Psychiatry. 2012;2:e147. DOI 10.1038/tp.2012.73.
69. VanNess S.H., Owens M.J., Kilts C.D. The variable number of tandem repeats element in DAT1 regulates in vitro dopamine transporter density. BMC Genet. 2005;6:55. DOI 10.1186/1471-2156-6-55.
70. Vermeersch H., T’sjoen G., Kaufman J.M., Van Houtte M. ESR1 polymorphisms, daily hassles, anger expression, and depressive symptoms in adolescent boys and girls. Horm. Behav. 2013;63(3):447453. DOI 10.1016/j.yhbeh.2012.11.017.
71. Viding E., Blair R.J., Moffitt T.E., Plomin R. Evidence for substantial genetic risk for psychopathy in 7-year-olds. J. Child Psychol. Psy chiat- ry. 2005;46(6):592-597. DOI 10.1111/j.1469-7610.2004.00393.x.
72. Wagner S., Baskaya Ö., Dahmen N., Lieb K., Tadić A. Modulatory role of the brain-derived neurotrophic factor Val66Met polymorphism on the effects of serious life events on impulsive aggression in borderline personality disorder. Genes Brain Behav. 2010;9(1):97-102. DOI 10.1111/j.1601-183X.2009.00539.x.
73. Waleewong O., Laslett A.M., Chenhall R., Room R. Harm from others’ drinking-related aggression, violence and misconduct in five Asian countries and the implications. Int. J. Drug Policy. 2018;56:101-107. DOI 10.1016/j.drugpo.2018.03.015.
74. Waller R., Corral-Frías N.S., Vannucci B., Bogdan R., Knodt A.R., Hariri A.R., Hyde L.W. An oxytocin receptor polymorphism predicts amygdala reactivity and antisocial behavior in men. Soc. Cogn. Affect Neurosci. 2016;11(8):1218-1226. DOI 10.1093/scan/ nsw042.
75. Wendland J.R., Martin B.J., Kruse M.R., Lesch K.P., Murphy D.L. Simultaneous genotyping of four functional loci of human SLC6A4, with a reappraisal of 5-HTTLPR and rs25531. Mol. Psychiatry. 2006;11(3):224-226. DOI 10.1038/sj.mp.4001789.
76. Wersinger S.R., Ginns E.I., O’Carroll A.M., Lolait S.J., Young W.S. Vasopressin V1b receptor knockout reduces aggressive behavior in male mice. Mol. Psychiatry. 2002;7:975-984. DOI 10.1038/sj.mp. 4001195.
77. Willour V.L., Seifuddin F., Mahon P.B., Jancic D., Pirooznia M., Steele J., Schweizer B., Goes F.S., Mondimore F.M., Mackinnon D.F., Bipolar Genome Study Consortium, Perlis R.H., Lee P.H., Huang J., Kelsoe J.R., Shilling P.D., Rietschel M., Nöthen M., Cichon S., Gurling H., Purcell S., Smoller J.W., Craddock N., DePaulo J.R., Schulze T.G., McMahon F.J., Zandi P.P., Potash J.B. A genome-wide association study of attempted suicide. Mol. Psychiatry. 2012;17(4):433-444. DOI 10.1038/mp.2011.4.
78. Willour V.L., Zandi P.P., Badner J.A., Steele J., Miao K., Lopez V., MacKinnon D.F., Mondimore F.M., Schweizer B., McInnis M.G., Miller E.B., Depaulo J.R., Gershon E.S., McMahon F.J., Potash J.B. Attempted suicide in bipolar disorder pedigrees: evidence for linkage to 2p12. Biol. Psychiatry. 2007;61(5):725-727. DOI 10.1016/j. biopsych.2006.05.014.
79. Yang L., Wang F., Wang M., Han M., Hu L., Zheng M., Ma J., Kang Y., Wang P., Sun H., Zuo W., Xie L., Wang A., Yu D., Liu Y. Association between oxytocin and receptor genetic polymorphisms and aggression in a northern Chinese Han population with alcohol de pendence. Neurosci. Lett. 2017;636:140-144. DOI 10.1016/j.neulet. 2016.10.066.
80. Yoon H.K., Lee H.J., Kim L., Lee M.S., Ham B.J. Impact of tryptophan hydroxylase 2 G-703T polymorphism on anger-related personality traits and orbitofrontal cortex. Behav. Brain Res. 2012;231(1):105-110.
81. Young S.E., Smolen A., Corley R.P., Krauter K.S., DeFries J.C., Crowley T.J., Hewitt J.K. Dopamine transporter polymorphism associated with externalizing behavior problems in children. Am. J. Med. Genet. 2002;114(2):144-149.
82. Zai C.C., Muir K.E., Nowrouzi B., Shaikh S.A., Choi E., Berall L., Trépanier M.O., Beitchman J.H., Kennedy J.L. Possible genetic association between vasopressin receptor 1B and child aggression. Psychiat ry Res. 2012;200(2-3):784-788. DOI 10.1016/j.psychres.2012. 07.031.
83. Zhang Y., Ming Q., Wang X., Yao S. The interactive effect of the MAOA-VNTR genotype and childhood abuse on aggressive behaviors in Chinese male adolescents. Psychiatr. Genet. 2016;26(3):117123. DOI 10.1097/YPG.0000000000000125.