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Original Articles

Altered D2 receptor and transcription factor EB expression in offspring of aggressive male rats, along with having depressive and anxiety-like behaviors

ORCID Icon, ORCID Icon, , , , , , & show all
Pages 789-799 | Received 28 Jan 2019, Accepted 09 Feb 2020, Published online: 28 Apr 2020

References

  • Gilligan J, Lee B. The psychopharmacologic treatment of violent youth. Ann N Y Acad Sci. 2006;1036(1):356–381.
  • Takahashi A, Miczek KA. Neurogenetics of aggressive behavior: studies in rodents. Curr Top Behav Neurosci. 2014; 17:3–44.
  • Rosen T, Bloemen EM, LoFaso VM, et al. Acute precipitants of physical elder abuse: qualitative analysis of legal records from highly adjudicated cases. J Interpers Violence. 2019;34(12):2599–2623.
  • Izci F, Fındıklı E, Camkurt MA, et al. Impact of aggression, depression, and anxiety levels on quality of life in epilepsy patients. Neuropsychiatr Dis Treat. 2016;12:2595–2603.
  • Apter A, van Praag HM, Plutchik R, et al. Interrelationships among anxiety, aggression, impulsivity, and mood: a serotonergically linked cluster? Psychiatry Res. 1990; 32(2):191–199.
  • Arnold LE, Gadow KD, Farmer CA, et al. Comorbid anxiety and social avoidance in treatment of severe childhood aggression: response to adding risperidone to stimulant and parent training; mediation of disruptive symptom response. J Child Adolesc Psychopharmacol. 2015; 25(3) :203–212.
  • Beiderbeck DI, Neumann ID, Veenema AH. Differences in intermale aggression are accompanied by opposite vasopressin release patterns within the septum in rats bred for low and high anxiety. Eur J Neurosci. 2007; 26(12) :3597–3605.
  • Berkowitz L. Physical pain and the inclination to aggression. Prog Clin Biol Res. 1984; 169:27–47.
  • Blanchard RJ, Wall PM, Blanchard DC. Problems in the study of rodent aggression. Horm Behav. 2003; 44(3):161–170.
  • Patki G, Solanki N, Atrooz F, et al. Depression, anxiety-like behavior and memory impairment are associated with increased oxidative stress and inflammation in a rat model of social stress. Brain Res. 2013; 1539:73–86.
  • Kudryavtseva NN, Bondar NP, Avgustinovich DF. Effects of repeated experience of aggression on the aggressive motivation and development of anxiety in male mice. Neurosci Behav Physiol. 2004;34(7):721–730.
  • Khalifeh SK, Zarrindast F, Alizadeh M-R, et al. Altered D2 receptor and transcription factor EB expression in offspring of aggressive male rats, along with having depressive and anxiety-like behaviors. Basic Clin Neurosci. 2018;1–12.
  • De Bundel D, Zussy C, Espallergues J, et al. Dopamine D2 receptors gate generalization of conditioned threat responses through mTORC1 signaling in the extended amygdala. Mol Psychiatry. 2016;21(11):1545–1553.
  • Nasehi M, Hajian M, Ebrahimi-Ghiri M, et al. Role of the basolateral amygdala dopamine receptors in arachidonylcyclopropylamide-induced fear learning deficits. Psychopharmacology. 2016; 233(2):213–224.
  • de la Mora MP, Gallegos-Cari A, Arizmendi-García Y, et al. Role of dopamine receptor mechanisms in the amygdaloid modulation of fear and anxiety: structural and functional analysis. Prog Neurobiol. 2010;90(2):198–216.
  • Jiang M, Wang J, Fu J, et al. Neuroprotective role of Sirt1 in mammalian models of Huntington’s disease through activation of multiple Sirt1 targets. Nat Med. 2012;18(1):153–158.
  • Decressac M, Bjorklund A. TFEB: pathogenic role and therapeutic target in Parkinson disease. Autophagy. 2013;9(8):1244–1246.
  • La Spada AR. PPARGC1A/PGC-1alpha, TFEB and enhanced proteostasis in Huntington disease: defining regulatory linkages between energy production and protein-organelle quality control. Autophagy. 2012;8(12):1845–1847.
  • Rodriguez-Navarro JA, Rodríguez L, Casarejos MJ, et al. Trehalose ameliorates dopaminergic and tau pathology in parkin deleted/tau overexpressing mice through autophagy activation. Neurobiol Dis. 2010;39(3):423–438.
  • Wu Z-M, Yang L-H, Cui R, et al. Contribution of hippocampal 5-HT3 receptors in hippocampal autophagy and extinction of conditioned fear responses after a single prolonged stress exposure in rats. Cell Mol Neurobiol. 2017;37(4):595–606.
  • Li Z, Hao S, Yin H, et al. Autophagy ameliorates cognitive impairment through activation of PVT1 and apoptosis in diabetes mice. Behav Brain Res. 2016; 305:265–277.
  • Weinstock M. Prenatal stressors in rodents: effects on behavior. Neurobiol Stress. 2017; 6:3–13.
  • van Rooijen G, Vermeulen JM, Ruhé HG, de Haan L. Treating depressive episodes or symptoms in patients with schizophrenia. CNS Spectr. 2019;24(2):239–248.
  • Kacprzak V, Patel NA, Riley E, et al. Dopaminergic control of anxiety in young and aged zebrafish. Pharmacol Biochem Behav. 2017;157:1–8.
  • Hattori T, Kanno K, Nagasawa M, et al. Impairment of interstrain social recognition during territorial aggressive behavior in oxytocin receptor-null mice. Neurosci Res. 2015;90:90–94.
  • Kinn Rod AM, et al. Effects of social defeat on sleep and behaviour: importance of the confrontational behaviour. Physiol Behav. 2014; 127:54–63.
  • Zarrindast MR, Nasehi M, Pournaghshband M, et al. Dopaminergic system in CA1 modulates MK-801 induced anxiolytic-like responses. Pharmacol Biochem Behav. 2012;103(1):102–110.
  • Nasehi M, Amin Yavari S, Zarrindast MR. Synergistic effects between CA1 mu opioid and dopamine D1-like receptors in impaired passive avoidance performance induced by hepatic encephalopathy in mice. Psychopharmacology. 2013;227(3):553–566.
  • Menard J, Treit D. The septum and the hippocampus differentially mediate anxiolytic effects of R(+)-8-OH-DPAT. Behav Pharmacol. 1998;9(2):93–101.
  • Appenrodt E, Schnabel R, Schwarzberg H. Vasopressin administration modulates anxiety-related behavior in rats. Physiol Behav. 1998; 64(4):543–547.
  • Bowen SE, Wiley JL, Balster RL. The effects of abused inhalants on mouse behavior in an elevated plus-maze. Eur J Pharmacol. 1996;312(2):131–136.
  • Espejo EF. Effects of weekly or daily exposure to the elevated plus-maze in male mice. Behav Brain Res. 1997;87(2):233–238.
  • Skutella T, Probst JC, Renner U, et al. Corticotropin-releasing hormone receptor (type I) antisense targeting reduces anxiety. Neuroscience. 1998;85(3):795–805.
  • Pillow BH, Flavell JH. Intellectual realism: the role of children’s interpretations of pictures and perceptual verbs. Child Dev. 1985;56(3):664–670.
  • Preitner F, Muzzin P, Revelli J-P, et al. Metabolic response to various beta-adrenoceptor agonists in beta3-adrenoceptor knockout mice: evidence for a new beta-adrenergic receptor in brown adipose tissue. Br J Pharmacol. 1998;124(8):1684–1688.
  • Porsolt RD, Anton G, Blavet N, et al. Behavioural despair in rats: a new model sensitive to antidepressant treatments. Eur J Pharmacol. 1978; 47(4):379–391.
  • Jauregui-Huerta F, Zhang L, Yañez-Delgadillo G, et al. Hippocampal cytogenesis and spatial learning in senile rats exposed to chronic variable stress: effects of previous early life exposure to mild stress. Front Aging Neurosci. 2015;7:159.
  • Ferrari PF, Van Erp AMM, Tornatzky W, et al. Accumbal dopamine and serotonin in anticipation of the next aggressive episode in rats. Eur J Neurosci. 2003;17(2):371–378.
  • Izenwasser S, Werling LL, Rosenberger JG, et al. Characterization of binding of [3H]GBR 12935 (1-[2-(diphenylmethoxy)ethyl]-4-(3-phenylpropyl)-piperazine) to membranes and to solubilized membrane extracts from terminal field regions of mesolimbic, mesocortical and nigrostriatal dopamine pathways. Neuropharmacology. 1990;29(11):1017–1024.
  • Moll GH, Mehnert C, Wicker M, et al. Age-associated changes in the densities of presynaptic monoamine transporters in different regions of the rat brain from early juvenile life to late adulthood. Brain Res Dev Brain Res. 2000;119(2):251–257.
  • Couppis MH, Kennedy CH. The rewarding effect of aggression is reduced by nucleus accumbens dopamine receptor antagonism in mice. Psychopharmacology. 2008;197(3):449–456.
  • Plaven-Sigray P, Gustavsson P, Farde L, et al. Dopamine D1 receptor availability is related to social behavior: a positron emission tomography study. Neuroimage. 2014;102(Pt 2):590–595.
  • Tidey JW, Miczek KA. Social defeat stress selectively alters mesocorticolimbic dopamine release: an in vivo microdialysis study. Brain Res. 1996;721(1-2):140–149.
  • Ohsumi Y. Molecular dissection of autophagy: two ubiquitin-like systems. Nat Rev Mol Cell Biol. 2001;2(3):211–216.
  • Gulbins A, Schumacher F, Becker KA, et al. Antidepressants act by inducing autophagy controlled by sphingomyelin-ceramide. Mol Psychiatry. 2018;23(12):2324–2346.
  • Rhein C, Löber S, Gmeiner P, et al. Derivatization of common antidepressant drugs increases inhibition of acid sphingomyelinase and reduces induction of phospholipidosis. J Neural Transm. 2018;125(12):1837–1845.
  • Xilouri M, Brekk OR, Polissidis A, et al. Impairment of chaperone-mediated autophagy induces dopaminergic neurodegeneration in rats. Autophagy. 2016;12(11):2230–2247.
  • Lee JH, Tecedor L, Chen YH, et al. Reinstating aberrant mTORC1 activity in Huntington’s disease mice improves disease phenotypes. Neuron. 2015;85(2):303–315.
  • Cho YS, Yen C-n, Shim JS, et al. Antidepressant indatraline induces autophagy and inhibits restenosis via suppression of mTOR/S6 kinase signaling pathway. Sci Rep. 2016;6(1):34655.
  • Laguna A, Schintu N, Nobre A, et al. Dopaminergic control of autophagic-lysosomal function implicates Lmx1b in Parkinson’s disease. Nat Neurosci. 2015;18(6):826–835.
  • Menzies FM, Fleming A, Rubinsztein DC. Compromised autophagy and neurodegenerative diseases. Nat Rev Neurosci. 2015;16(6):345–357.
  • Napolitano G, Ballabio A. TFEB at a glance. J Cell Sci. 2016;129(13):2475–2481.
  • Dehay B, Bove J, Rodriguez-Muela N, et al. Pathogenic lysosomal depletion in Parkinson’s disease. J Neurosci. 2010;30(37):12535–12544.
  • Decressac M, Mattsson B, Weikop P, et al. TFEB-mediated autophagy rescues midbrain dopamine neurons from alpha-synuclein toxicity. Proc Natl Acad Sci USA. 2013;110(19):E1817–E1826.
  • Wang J-D, Cao Y-L, Li Q, et al. A pivotal role of FOS-mediated BECN1/Beclin 1 upregulation in dopamine D2 and D3 receptor agonist-induced autophagy activation. Autophagy. 2015;11(11):2057–2073.
  • Wei C, Gao J, Li M, et al. Dopamine D2 receptors contribute to cardioprotection of ischemic post-conditioning via activating autophagy in isolated rat hearts. Int J Cardiol. 2016;203:837–839.
  • Dolma S, Selvadurai HJ, Lan X, et al. Inhibition of dopamine receptor D4 impedes autophagic flux, proliferation, and survival of glioblastoma stem cells. Cancer Cell. 2016;29(6):859–873.
  • Li Z, Ji X, Wang W, et al. Ammonia induces autophagy through dopamine receptor D3 and MTOR. PLoS One. 2016; 11(4) :e0153526.
  • Maccari S, Piazza PV, Kabbaj M, et al. Adoption reverses the long-term impairment in glucocorticoid feedback induced by prenatal stress. J Neurosci. 1995;15(1):110–116.

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