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Animal models of maternal depression for monitoring neurodevelopmental changes occurring in dams and offspring

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Ashcroft GW, Crawford TB, Eccleston D, Sharman DF, MacDougall EJ, Stanton JB, Binns JK. (1966). 5-hydroxyindole compounds in the cerebrospinal fluid of patients with psychiatric or neurological diseases. Lancet (London, England)2: 1049–52.10.1016/S0140-6736(66)92028-9Open DOISearch in Google Scholar

Barros VG, Rodríguez P, Martijena ID, Pérez A, Molina VA, Antonelli MC. (2006). Prenatal stress and early adoption effects on benzodiazepine receptors and anxiogenic behavior in the adult rat brain. Synapse60: 609–18.10.1002/syn.20336Open DOISearch in Google Scholar

Belzung C, Lemoine M. (2011). Criteria of validity for animal models of psychiatric disorders: focus on anxiety disorders and depression. Biol. Mood Anxiety Disord.1: 9.Search in Google Scholar

Braun K, Bock J, Wainstock T, Matas E, Gaisler-Salomon I, Fegert J, Ziegenhain U, Segal M. (2017). Experience-induced transgenerational (re-)programming of neuronal structure and functions: Impact of stress prior and during pregnancy. Neurosci Biobehav Rev. pii: S0149-7634(16)30731-X. [Epub ahead of print]10.1016/j.neubiorev.2017.05.021Search in Google Scholar

Bredy TW, Grant RJ, Champagne DL, Meaney MJ. (2003). Maternal care influences neuronal survival in the hippocampus of the rat. Eur. J. Neurosci.18: 2903–9.10.1111/j.1460-9568.2003.02965.xOpen DOISearch in Google Scholar

Brummelte S, Galea LAM. (2010). Depression during pregnancy and postpartum: contribution of stress and ovarian hormones. Prog. Neuropsychopharmacol. Biol. Psychiatry34: 766–76.Search in Google Scholar

Burke HM, Davis MC, Otte C, Mohr DC. (2005). Depression and cortisol responses to psychological stress: a meta-analysis. Psychoneuroendocrinology30: 846–56.10.1016/j.psyneuen.2005.02.010Open DOISearch in Google Scholar

Clements CC, Castro VM, Blumenthal SR, Rosenfield HR, Murphy SN, Fava M, Erb JL, Churchill SE, Kaimal AJ, Doyle AE, Robinson EB, Smoller JW, Kohane IS, Perlis RH. (2015). Prenatal antidepressant exposure is associated with risk for attention-deficit hyperactivity disorder but not autism spectrum disorder in a large health system. Mol. Psychiatry20: 727–34.Search in Google Scholar

Deussing JM. (2006). Animal models of depression. Drug Discov. Today Dis. Model.3: 375–383.10.1016/j.ddmod.2006.11.003Open DOISearch in Google Scholar

Dobbing J, Sands J. (1979). Comparative aspects of the brain growth spurt. Early Hum. Dev.3: 79–83.Search in Google Scholar

Egeland M, Zunszain PA, Pariante CM. (2015). Molecular mechanisms in the regulation of adult neurogenesis during stress. Nat. Rev. Neurosci.16: 189–200.Search in Google Scholar

Finamore TL, Port RL. Developmental stress disrupts habituation but spares prepulse inhibition in young rats. Physiol. Behav.69: 527–30.10.1016/S0031-9384(00)00205-5Search in Google Scholar

Gemmel M, Hazlett M, Bögi E, De Lacalle S, Hill LA, Kokras N, Hammond GL, Dalla C, Charlier TD, Pawluski JL. (2017). Perinatal fluoxetine effects on social play, the HPA system, and hippocampal plasticity in pre-adolescent male and female rats: Interactions with pre-gestational maternal stress. Psychoneuroendocrinology84: 159–171.10.1016/j.psyneuen.2017.07.480Open DOISearch in Google Scholar

Gentile S. (2011). Suicidal mothers. J. Inj. Violence Res.3: 90–7.Search in Google Scholar

Gentile S. (2017). Untreated depression during pregnancy: Short- and long-term effects in offspring. A systematic review. Neuroscience342: 154–166.Search in Google Scholar

Gonzalez A, Lovic V, Ward GR, Wainwright PE, Fleming AS. (2001). Intergenerational effects of complete maternal deprivation and replacement stimulation on maternal behavior and emotionality in female rats. Dev. Psychobiol. 38: 11–32.10.1002/1098-2302(2001)38:1<11::AID-DEV2>3.0.CO;2-BOpen DOISearch in Google Scholar

Goodyer IM, Park RJ, Herbert J. (2001). Psychosocial and endocrine features of chronic first-episode major depression in 8-16 year olds. Biol. Psychiatry50: 351–7.Search in Google Scholar

Gross M, Pinhasov A. (2016). Chronic mild stress in submissive mice: Marked polydipsia and social avoidance without hedonic deficit in the sucrose preference test. Behav. Brain Res.298: 25–34.Search in Google Scholar

Grundwald NJ, Benítez DP, Brunton PJ. (2016). Sex-Dependent Effects of Prenatal Stress on Social Memory in Rats: A Role for Differential Expression of Central Vasopressin-1a Receptors. J. Neuroendocrinol.28(4). doi: 10.1111/jne.12343.10.1111/jne.12343Open DOISearch in Google Scholar

Grundwald NJ, Brunton PJ. (2015). Prenatal stress programs neuroendocrine stress responses and affective behaviors in second generation rats in a sex-dependent manner. Psychoneuroendocrinology62: 204–216.Search in Google Scholar

Huang Y, Chen S, Xu H, Yu X, Lai H, Ho G, Huang Q, Shi X. (2013). Pre-gestational stress alters stress-response of pubertal offspring rat in sexually dimorphic and hemispherically asymmetric manner. BMC Neurosci.14: 67.10.1186/1471-2202-14-67Open DOISearch in Google Scholar

Huang Y, Shen Z, Hu L, Xia F, Li Y, Zhuang J, Chen P, Huang Q. (2016). Exposure of mother rats to chronic unpredictable stress before pregnancy alters the metabolism of gamma-aminobutyric acid and glutamate in the right hippocampus of offspring in early adolescence in a sexually dimorphic manner. Psychiatry Res.246: 236–245.Search in Google Scholar

Huang Y, Xu H, Li H, Yang H, Chen Y, Shi X. (2012). Pre-gestational stress reduces the ratio of 5-HIAA to 5-HT and the expression of 5-HT1A receptor and serotonin transporter in the brain of foetal rat. BMC Neurosci.13: 22.Search in Google Scholar

Jezová D, Juránková E, Mosnárová A, Kriska M, Skultétyová I. (1996). Neuroendocrine response during stress with relation to gender differences. Acta Neurobiol. Exp. (Wars).56: 779–85.Search in Google Scholar

Kiryanova V, Smith VM, Dyck RH, Antle MC. (2017a). Circadian behavior of adult mice exposed to stress and fluoxetine during development. Psycho-pharmacology (Berl).234: 793–804.10.1007/s00213-016-4515-3Search in Google Scholar

Knaepen L, Pawluski JL, Patijn J, van Kleef M, Tibboel D, Joosten EA. (2014). Perinatal maternal stress and serotonin signaling: Effects on pain sensitivity in offspring. Dev. Psychobiol.56: 885–896.10.1002/dev.21184Open DOISearch in Google Scholar

Korte S. (2001). Corticosteroids in relation to fear, anxiety and psychopathology. Neurosci. Biobehav. Rev.25: 117–142.10.1016/S0149-7634(01)00002-1Open DOISearch in Google Scholar

Ladd CO, Huot RL, Thrivikraman K V, Nemeroff CB, Meaney MJ, Plotsky PM. (2000). Long-term behavioral and neuroendocrine adaptations to adverse early experience. Prog. Brain Res.122: 81–103.10.1016/S0079-6123(08)62132-9Open DOISearch in Google Scholar

Ladd CO, Owens MJ, Nemeroff CB. (1996). Persistent changes in corticotropin-releasing factor neuronal systems induced by maternal deprivation. Endocrinology137: 1212–8.Search in Google Scholar

Maccari S, Morley-Fletcher S. (2007). Effects of prenatal restraint stress on the hypothalamus-pituitary-adrenal axis and related behavioural and neurobiological alterations. Psychoneuroendocrinology32 Suppl 1: S10–5.10.1016/j.psyneuen.2007.06.005Open DOISearch in Google Scholar

Mairesse J, Van Camp G, Gatta E, Marrocco J, Reynaert M-L, Consolazione M, Morley-Fletcher S, Nicoletti F, Maccari S. (2015). Sleep in prenatally restraint stressed rats, a model of mixed anxiety-depressive disorder. Adv. Neurobiol.10: 27–44.Search in Google Scholar

Muhammad A, Kolb B. (2011). Mild prenatal stress-modulated behavior and neuronal spine density without affecting amphetamine sensitization. Dev. Neurosci.33: 85–98.10.1159/000324744Open DOISearch in Google Scholar

Pearlstein T. (2015). Depression during Pregnancy. Best Pract. Res. Clin. Obstet. Gynaecol.29: 754–64.Search in Google Scholar

Pereira-Figueiredo I, Castellano O, Riolobos AS, Ferreira-Dias G, López DE, Sancho C. (2017). Long-Term Sertraline Intake Reverses the Behavioral Changes Induced by Prenatal Stress in Rats in a Sex-Dependent Way. Front. Behav. Neurosci.11: 99.Search in Google Scholar

Plotsky PM, Meaney MJ. (1993). Early, postnatal experience alters hypothalamic corticotropin-releasing factor (CRF) mRNA, median eminence CRF content and stress-induced release in adult rats. Brain Res. Mol. Brain Res.18: 195–200.10.1016/0169-328X(93)90189-VOpen DOISearch in Google Scholar

Rayen I, Gemmel M, Pauley G, Steinbusch HWM, Pawluski JL. (2015). Developmental exposure to SSRIs, in addition to maternal stress, has long-term sex-dependent effects on hippocampal plasticity. Psychopharmacology (Berl).232: 1231–1244.Search in Google Scholar

Rayen I, van den Hove DL, Prickaerts J, Steinbusch HW, Pawluski JL. (2011). Fluoxetine during development reverses the effects of prenatal stress on depressive-like behavior and hippocampal neurogenesis in adolescence. PLoS One6: e24003.Search in Google Scholar

Rice D, Barone S, Jr. (2000). Critical periods of vulnerability for the developing nervous system: evidence from humans and animal models. Environ. Health Perspect.108 Suppl 3: 511–33.Search in Google Scholar

Schildkraut JJ. (1965). The catecholamine hypothesis of affective disorders: a review of supporting evidence. Am J Psychiatry.122(5): 509–22.Search in Google Scholar

Schüle C. (2007). Neuroendocrinological mechanisms of actions of antidepressant drugs. J. Neuroendocrinol.19: 213–26.10.1111/j.1365-2826.2006.01516.x17280595Open DOISearch in Google Scholar

Stepanichev M, Dygalo NN, Grigoryan G, Shishkina GT, Gulyaeva N. (2014). Rodent models of depression: neurotrophic and neuroinflammatory bio-markers. Biomed Res. Int.2014: 932757.Search in Google Scholar

Talge NM, Neal C, Glover V. (2007). Antenatal maternal stress and long-term effects on child neurodevelopment: how and why? J. Child Psychol. Psychiatry.48(3–4): 245–61.Search in Google Scholar

Tarantino LM, Sullivan PF, Meltzer-Brody S. (2011). Using animal models to disentangle the role of genetic, epigenetic, and environmental influences on behavioral outcomes associated with maternal anxiety and depression. Front. psychiatry2: 44.Search in Google Scholar

van den Bergh BRH, van den Heuvel MI, Lahti M, Braeken M, de Rooij SR, Entringer S, Hoyer D, Roseboom T, Räikkönen K, King S, Schwab M. (2017). Prenatal developmental origins of behavior and mental health: the influence of maternal stress in pregnancy. Neurosci. Biobehav. Rev. pii: S0149-7634(16)30734-5, [Epub ahead of print]10.1016/j.neubiorev.2017.07.003Search in Google Scholar

Varga J, Ferenczi S, Kovács KJ, Garafova A, Jezova D, Zelena D. (2013). Comparison of stress-induced changes in adults and pups: is aldosterone the main adrenocortical stress hormone during the perinatal period in rats? PLoS One8: e72313.10.1371/journal.pone.0072313376399524039750Search in Google Scholar

Voltolini C, Petraglia F. (2014). Neuroendocrinology of pregnancy and parturition. Handb Clin Neurol.124: 17–36.Search in Google Scholar

Wainwright SR, Galea LAM. (2013). The neural plasticity theory of depression: assessing the roles of adult neurogenesis and PSA-NCAM within the hippo-campus. Neural Plast.2013: 805497.Search in Google Scholar

Willner P. (2005). Chronic mild stress (CMS) revisited: consistency and behavioural-neurobiological concordance in the effects of CMS. Neuropsychobiology52: 90–110.Search in Google Scholar

Willner P, Mitchell PJ. (2002). The validity of animal models of predisposition to depression. Behav. Pharmacol.13: 169–88.Search in Google Scholar

Willner P, Towell A, Sampson D, Sophokleous S, Muscat R. (1987). Reduction of sucrose preference by chronic unpredictable mild stress, and its restoration by a tricyclic antidepressant. Psychopharmacology (Berl).93: 358–64.Search in Google Scholar

Xing Y, He J, Hou J, Lin F, Tian J, Kurihara H. (2013). Gender differences in CMS and the effects of antidepressant venlafaxine in rats. Neurochem. Int.63: 570–5.Search in Google Scholar

Zuena AR, Mairesse J, Casolini P, Cinque C, Alemà GS, Morley-Fletcher S, Chiodi V, Spagnoli LG, Gradini R, Catalani A, Nicoletti F, Maccari S. (2008). Prenatal restraint stress generates two distinct behavioral and neurochemical profiles in male and female rats. PLoS One3: e2170.Search in Google Scholar

eISSN:
1337-9569
Lingua:
Inglese
Frequenza di pubblicazione:
4 volte all'anno
Argomenti della rivista:
Medicine, Clinical Medicine, Pharmacology, Toxicology