Please use this identifier to cite or link to this item: https://rima.ufrrj.br/jspui/handle/20.500.14407/10300
Full metadata record
DC FieldValueLanguage
dc.contributor.authorFonseca, Fabricia Viana
dc.date.accessioned2023-12-21T19:00:41Z-
dc.date.available2023-12-21T19:00:41Z-
dc.date.issued2013-10-08
dc.identifier.citationFONSECA, Fabricia Viana. Papel dos receptores 5-HT1A no equilíbrio hidroeletrolítico, respostas neuroendócrinas e avaliação comportamental em ratas ovariectomizadas: influência do estrógeno. 2013. 85 f. Tese (Programa Multicêntrico em Ciências Fisiológicas) - Instituto de Ciências Biológicas e da Saúde, Universidade Federal Rural do Rio de Janeiro, Seropédica, 2013.por
dc.identifier.urihttps://rima.ufrrj.br/jspui/handle/20.500.14407/10300-
dc.description.abstractA atividade serotoninérgica ascendente a partir do núcleo dorsal da rafe (NDR) é modulada pela sinalização dos receptores 5-HT1A que resulta em alteração da freqüência de disparo dos potenciais de ação dos neurônios serotoninérgicos. Observações recentes do nosso laboratório utilizando o 8-OH-DPAT, um agonista de receptores serotoninérgicos 5-HT1A, demonstraram que a sua administração periférica ou intra-NDR incrementa a ingestão de salina hipertônica em condições basais ou após a depleção corporal de sódio em ratos machos. Dessa forma, examinamos neste trabalho o comportamento ingestivo e a homeostase hidroeletrolítica em condição basal e após depleção de sódio em ratas ovariectomizadas (OVX). As observações foram comparadas com aquelas obtidas em grupos de ratas OVX tratadas cronicamente com estrógeno (E2) associada ao tratamento com 8-OH-DPAT. Numa etapa final investigamos uma possível correlação entre o “status” funcional serotonérgico e a reposição com E2 nas concentrações plasmáticos de angiotensina I (ANG I), angiotensina II (ANGII), ocitocina (OT) vasopressina (AVP), peptídeo natriurético atrial (ANP) e corticosterona (CORT). Além disso, estudamos a expressão do RNAm para 5-HT1A, descarboxilase do ácido glutâmico (GAD) e expressão do RNAm e quantificação proteica de triptofano hidroxilase (TPH2), no NDR de grupos de ratas (i) OVX (sem reposição estrogênica) (ii) OVX-E2 (com reposição estrogênica) e cronicamente tratadas com o agonista 5-HT1A, 8-OH-DPAT, em condições basais e após depleção de sódio. Por fim, avaliamos o comportamento de ansiedade pelo teste de labirinto em cruz elevado (LEC) e atividade exploratória através do campo aberto (CA) nos grupos apresentados anteriormente em condição basal. De acordo com os nossos resultados de avaliação diária, observamos uma possível relação entre a terapia estrogênica e o sistema serotoninérgico, no que diz respeito à inibição do comportamento de ingestão e excreção renal de sódio, ingestão de água e alimento, dado este que resultou em perda de peso. Já no experimento que submetemos os animais ao desafio homeostático (depleção de sódio), verificamos que os parâmetros hidroeletrolíticos (comportamento ingestivo, excreção renal de sódio, sódio e/ou proteína e osmolalidade plasmática e hematócrito) são alterados pela depleção de sódio. Porém, possivelmente através de mecanismos centrais e periféricos, o E2 e o sistema serotoninérgico parecem mediar respostas ao nível de diminuição da excreção renal de sódio e inibição do apetite específico a este íon, uma vez que essa atenuação é observada principalmente quando os animais são submetidos a depleção de sódio. Adicionalmente, evidenciamos que a alterações na resposta endócrina observada neste estudo pode ser mediada tanto pelo tratamento com E2 quanto pelo tratamento com 8-OH-DPAT e ainda pela condição de desafio experimental. A geração de ANGI e ANGII parece evolver mecanismo diferente que depende da condição do animal, ou seja, o tratamento com 8-OH-DPAT associado ao E2 em condição basal aumenta a concentração plasmática de ANGI e o E2 parece atenuar essa liberação em condição de depleção de sódio. A liberação de OT e CORT em condição basal parece ser potencializada pela associação dos dois tratamentos: o E2 tanto em condição basal e de depleção parece aumentar a liberação de ambos. Em relação à CORT na condição de depleção o E2 parece atenuar em parte o efeito estressor da hiponatremia; por sua vez, o tratamento com 8-OH-DPAT parece ser crítico em potencializar a secreção de AVP e ANP em condição de depleção. Por sua vez, a modulação central do sistema serotoninérgico (NDR) parece viii recrutar mecanismos moleculares diferentes com relação à condição homeostática do animal. Uma vez que verificamos uma diminuição da expressão do receptor 5-HT1A mediada predominantemente pelo tratamento crônico com 8-OH-DPAT, e em relação à diminuição de TPH2 tal efeito foi mediado pelo tratamento com E2 em condição basal. Já em condição de depleção o E2 parece ser crítico na diminuição da expressão de 5-HT1A. Nesse sentido, verificamos um efeito semelhante ao ansiogênico do E2 que possivelmente está relacionado com essas alterações moleculares em condição basal. Porém a associação do E2 ao 8-OH-DPAT reverteu em parte esse efeito. Considerando-se essas observações, estes resultados reforçam uma possível ligação entre o déficit estrogênico e a maior incidência de enfermidades como depressão e hipertensão arterial. Como o sistema serotoninérgico relaciona-se intimamente a tais doenças são necessários mais estudos para verificar o tipo de terapia farmacológica que pode ser associado para o tratamento de ambas as enfermidades.por
dc.description.sponsorshipCNPq - Conselho Nacional de Desenvolvimento Científico e Tecnológicopor
dc.formatapplication/pdf*
dc.languageporpor
dc.publisherUniversidade Federal Rural do Rio de Janeiropor
dc.rightsAcesso Abertopor
dc.subjectreceptor 5-HT1Apor
dc.subjectNúcleo Dorsal da Rafepor
dc.subjectsede, apetite por sódiopor
dc.subjectestradiol e ansiedadepor
dc.subject5-HT1A receptorseng
dc.subjectDorsal Raphe Nucleuseng
dc.subjectthirsteng
dc.subjectsodium intakeeng
dc.subjectestrogeneng
dc.subjectanxiogeniceng
dc.titlePapel dos receptores 5-HT1A no equilíbrio hidroeletrolítico, respostas neuroendócrinas e avaliação comportamental em ratas ovariectomizadas: influência do estrógenopor
dc.title.alternativeRole of 5-HT1A receptors in electrolyte balance, neuroendocrine and behavioral assessment in ovariectomized rats: influence of estrogeneng
dc.typeTesepor
dc.description.abstractOtherThe ascending serotonergic activity from the dorsal raphe nucleus (NDR) is modulated by the 5-HT1A receptors signaling that result in changes in the firing frequency of action potentials from the serotonergic neurons. This condition plays important role in the regulation of sodium satiety. Recent observations from our laboratory using the 8-OH-DPAT, a receptor agonist of 5-HT1A serotonergic receptors, demonstrated that peripheral or intra-NDR administration increases the hypertonic saline intake under basal condition or after sodium depletion in male rats. Thus, we examined in the present study the feeding behavior, daily fluid intake and electrolyte homeostasis in ovariectomized (OVX) rats submitted to oil or estrogen treatment (OVX group and OVX-E2 group, respectively) and to chronicle treatment with the 8-OH-DPAT or vehicle, in basal condition and after sodium depletion. We also investigated a possible correlation between serotonergic functional status and E2 replacement on the plasma levels of angiotensin I (ANG I), angiotensin II (ANG II), oxytocin (OT), vasopressin (AVP), atrial natriuretic peptide (ANP) and corticosterone (CORT), as well as, on the mRNA expression for 5-HT1A autoreceptor and glutamic acid decarboxylase (GAD) and the protein quantification of tryptophan hydroxylase (TPH2) in NDR from the groups abovementioned. Finally, we carried out anxiety test by elevated plus maze (LEC) and exploratory activity evaluation through the open field (CA) in all groups. In accordance with our daily evaluation, we observed a possible relationship between estrogen therapy and the serotonergic system related to to the inhibition of drinking behavior and reduction in renal sodium excretion, food and water intake, since this has resulted in loss weight. The animals subjected to the homeostatic challenge presented electrolyte parameters (renal sodium excretion, sodium and / or protein and osmolarity plasma and hematocrit) and feeding behavior altered by sodium depletion. However, possibly through central and peripheral mechanisms, serotonergic system and E2 appear to mediate the reduction of urinary sodium excretion and to induce NaCl intake inhibition. In addition, we showed changes in the endocrine response which may be mediated by E2 and 8-OH-DPAT treatments and experimental challenges. The ANG I and ANG II release and respective mechanisms seem to be depent of the condition of the animal or 8-OH-DPAT treatment. Chronic 8-OH-DPAT in basal condition increased the ANG I plasma concentration while the E2 seems to attenuate this response following sodium depletion. The OT and CORT plasma levels at basal condition were enhanced by association of the two treatments. E2 replacement, both at baseline and depletion conditions, increased OT and CORT plasma levels. Additionally we did not observe estrogen influence on plasma CORT concentrations following sodium depletion; on the other hand, the 8-OH-DPAT seems to be critical to enhance the AVP and ANP secretion following sodium depletion. The central serotonergic system seems to recruit different molecular mechanisms regarding the homeostatic condition of the animal, since we found a decrease in the expression of 5-HT1A receptor mediated, predominantly, by chronic 8-OH-DPAT treatment and the reduction of TPH2; sucheffect was mediated by treatment with E2 at baseline. On the other hand, it seems clear that E2 replacement was critical for reducing 5-HT1A receptors expression on NDR. In this sense, we observed an anxiogenic-like effect of E2, which would be possibly related to these molecular changes at baseline, despite the association of E2 and 8-OH-DPAT treatments partially reversed this effect. Considering these observations, these results support a possible x link between low estrogen and increased incidence of diseases such as depression and hypertension facilitated by enhanced sodium intake.eng
dc.contributor.advisor1Reis, Luis Carlos
dc.contributor.advisor1ID484.252.577-00por
dc.contributor.advisor1Latteshttp://lattes.cnpq.br/2679836949147357por
dc.contributor.referee1Rodrigues, José Antunes
dc.contributor.referee2Passos Júnior, Daniel Badauê
dc.contributor.referee3Ferreira, Andrea Claudia Freitas
dc.contributor.referee4Olivares, Emerson Lopes
dc.creator.ID106.615.137-77por
dc.creator.Latteshttp://lattes.cnpq.br/9292722675695467por
dc.publisher.countryBrasilpor
dc.publisher.departmentInstituto de Ciências Biológicas e da Saúdepor
dc.publisher.initialsUFRRJpor
dc.publisher.programPrograma Multicêntrico de Pós-Graduação em Ciências Fisiológicaspor
dc.relation.referencesABRAMS, J. K.; JOHNNSO, P. L.; HOLLIS, J. H.; LOWRY, C. A. Anatomic and functional topography of the dorsal raphe nucleus. Ann New York Acad Sci 1018: 46-57, 2004. AGHAJANIAN, G. K.; SPROUSE, J. S.; RASMUSSEN, K. Physiology of the midbrain serotonin system. In: Psychopharmacology: The Third Generation of Progress, New York, Raven Press, p. 141-149, 1987. ALBERT, P. R.; ZHOU, Q. Y.; VANTOLl, H. H. M., BUNZOW, J. R.; CIVELLI, O. Cloning, functional expressicon, and mRNA tissue distribution of the rat 5-hydroxytryptamine1A receptor gene. J. Biol. Chem. 265:5825–5832, 1990. ALBERT, P. R.; LEMBO, P.; STORRING, J. M.; CHAREST, A.; SAUCIER, C. The 5-HT1A receptor: signaling, desensitization, and gene transcription. Neuropsychopharmacology, 1:19-25, 1996. AMICO, J. A.; MORRIS, M.; VOLLMER, R. R. Mice deficient in oxytocin manifest increased saline consumption following overnight fluid deprivation. Am. J. Physiol., 281:1368-73, 2001. ANDERNSO, I. K.; MARTIN, G. R.; RAMAGE, A. G. Central administration of 5-HT activates 5-HT1A receptors to cause sympathoexcitation and 5-HT2/5HT1C receptors to release vasopressin in anaesthetized rats. Br J Pharmacol, 107: 1020–1028. 1992. ANTUNES RODRIGUES, J.; COVIAN M. R. Hypothalamic control of sodium chloride and water intake. Acta Physiol Lat Am 13:94–100, 1963. ANTUNES-RODRIGUES, J.; DE CASTRO, M.; ELIAS, L. L. K.; VALENÇA, M, M.; McCANN, S. M. Neuroendocrine control of body fluid metabolism. Physiol. Rev. 84: 169-208, 2004. ARARAGI, N & LESCH, K. P. Serotonin (5-HT) in the regulation of depression-related emotionality: insight from 5-HT transporter and tryptophan hydroxylase-2 knockout mouse models. Curr Drug Targets. 5:549-70, 2013. ARGYROPOULOS, S.V.; SANDFORD, J. J.; NUTT, D. J. The psychobiology of anxiolytic drug. Part 2: pharmacological treatments of anxiety. Pharmacol Ther, 88:213–227. 2000. ARPELS, J. C. The female brain hypoestrogenic continuum from the premenstrual syndrome to menopause. A hypothesis and review of supporting data. J Reprod Med 41:633–639, 1996. ARTIGAS, F.; ROMERO, L.; DE MONTIGNY, C.; BLIER, P. Acceleration of the effect of selected antidepressant drugs in major depression by 5-HT1A antagonists. Trends Neurosci 19:378–383, 1996. ASHER, J.; MICHOPOULOS, V.; REDING, K. M.; WILNSO, M. E.; TOUFEXIS, D. Social stress and the polymorphic region of the serotonin reuptake transporter gene modify 66 oestradiol-induced changes on central monoamine concentrations in female rhesus monkeys. J Neuroendocrinol, 25:321-328. 2013 ASSIÉ, M. B.; LOMENECH, H.; RAVAILHE V.; FAUCILLON, V.; NEWMAN-TANCREDI A. Rapid desensitization of somatodendritic 5-HT1A receptors by chronic administration of the high-efficacy 5-HT1A agonist, F13714: a microdialysis study in the rat. Brit J Pharmacol 149: 170-178, 2006. AZMITIA, E. C.; GANNON, P. J.; KHECK, N. M. Cellular localization of the 5-HT1A receptor in primate brain neurons and glial cells. Neuropsychopharmacology 14: 35–46, 1996. ATKINNSO, H. C & WADDELL, B. J. Circadian variation in basal plasma corticosterone and adrenocorticotropin in the rat: sexual dimorphism and changes across the estrous cycle. Endocrinol, 138:3842-3848, 1997. AZMITIA, E.C. The CNS serotonergic system: Progression toward a collaborative organization. In: Psychopharmacology: The Third Generation of Progress, New York, Raven Press, p. 61-73, 1987. AZMITIA, E. C. & SEGAL, M. An autoradiographic analysis of the differential ascending projections of the dorsal and median raphe nuclei in the rat. Journal of Comparative Neurology, 179: 641-668.1978. BACH-MIZRACHI, H.; UNDERWOOD, M. D.; KASSIR, S.A.; BAKALIAN, M.J.; SIBILLE, E.; TAMIR, H.; MANN, J. J.; ARANGO, V. Neuronal tryptophan hydroxylase mRNA expression in the human dorsal and median raphe nuclei: major depression and suicide. Neuropsychopharmacology, 31:814-24, 2006. BACK H, FORSSMANN WG, STUMPF WE. Atrial myoendocrine cells (cardiodilatin atrial natriuretic polypeptide-containing myocardiocytes) are target cells for estradiol. Cell Tissue Res, 255: 673–674. 1989, BADAUÊ-PASSOS, D. Jr.; VENTURA, R. R.; SILVA L. F. S.; OLIVARES, E. L.; REIS, L. C. Effect of brain serotoninergic stimulation on sodium appetite of euthyroid and hypothyroid rats. Exp Physiol, 88: 251-260, 2003. BADAUÊ-PASSOS, D. Jr.; GODINO, A.; JOHNNSO, A. K.; VIVAS, L.; ANTUNES RODRIGUES J. Dorsal raphe nuclei integrate allostatic information evoked by sodium depletion-induced ingestion. Exp Neurol 206: 86-94, 2007. BAKER, K.G.,et al. Cytoarchitecture of the human dorsal raphe nucleus. J. Comp. Neurol. 301: 147–161, 1990. BAUDRIE, V.; OLIVER, C.; CHAOULOFF, F. Corticosterone response to the serotonergic agonist D-fenfluramine may be independent from corticotropin-releasing factor (CRH). Neurosci Lett. 156:121-4, 1993. 67 BELO, N. O.; SAIRAM, M. R.; DOS REIS, A. M. Impairment of the natriuretic peptide system in follitropin receptor knockout mice and reversal by estradiol: implications for obesity-associated hypertension in menopause. Endocrinol, 149:1399-1406, 2008. BETHEA, L. C.; MIRKES, J. S.; SHIVELY, A. C.; ADAMS, R. M. Steroid Regulation of Tryptophan Hydroxylase Protein in the Dorsal Raphe of Macaques. BIOL PSYCHIATRY 47:562–576, 2000. BISSET, G. W. & CHOWDREY, H. S. Control of release of vasopressin by neuroendocrine reflexes. Q J Exp Physiol. 73:811-72. 1988. BLIER, P.; PIÑEYROi, G.; EL MANSARI, M.; BERGERON, R.; DE MONTIGNY, C. Role ofsomatodendritic 5-HT autoreceptors in modulating 5-HT neurotransmission. Annals New York Academy of Sciences, 861: 204–216, 1998. BOSLEY & DESCARRIES, J. Monoamine innervation of the organum vasculosum laminae terminalis (OVLT): a high resolution radioautographic study in the rat. Comp Neurol, 272:545-561, 1988. BOUALI, S.; EVRARD, A.; CHASTANET, M.; LESCH, K. P.; HAMON, M.; ADRIEN, J. Sex hormone-dependent desensitization of 5-HT1A autoreceptors in knockout mice deficient in the 5-HT transporter. Eur J Neurosci, 18: 2203-2212, 2003. BOUALI, S.; EVRARD, A.; CHASTANET. M.; LESCH, K-P.; HAMON, M.; ADRIEN, J. Sex hormone-dependent desensitization of 5-HT1A autorreceptors in knockout mice deficient in the 5-HT transporter. European Journal of Neuroscience, 18: 2203-2212, 2003. BOHLER, H. C. JR.; ZOELLER, R. T.; KING, J. C.; RUBIN, B. S.; WEBER, R.; MERRIAM, G.; R. Corticotropin releasing hormone mRNA is elevated on the afternoon of proestrus in the parvocellular paraventricular nuclei of the female rat. Brain Res Mol Brain Res, 8:259-262, 1990. BOTELHO, L. M.; BLOCK, C. H.; KHOSLA, M. C.; SANTOS, R. A. Plasma angiotensin(1-7) immunoreactivity is increased by salt load, water deprivation, and hemorrhage. Peptides, 15:723-9, 1994. BROSNIHAN, K. B.; WEDDLE, D.; ANTHONY, M. S.; HEISE, C.; LI, P.; FERRARIO, C. M. ;Effects of chronic hormone replacement on the renin-angiotensin system in cynomolgus monkeys. J Hypertens 15:719–726, 1997. BRUNTON, P. J. & RUSSELL, J. A. Endocrine induced changes in brain function during pregnancy. Brain Res, 10:198-215. 2010 BUONINCONTI, R. The juxtaglomerular apparatus: physiopathology and clinical aspects of renin-angiotensin system, Recenti Prog Med, 41:81-165, 1966. BURNET, P. W. J.; EASTWOOD, S. L.; LACEY, K. The distribution of 5HT1A and 5-HT2A receptor mRNA in human brain. Brain Res, 676: 157–168, 1995. 68 BUTERA, P. C. & CZAJA, J. A. Intracranial estradiol in ovariectomized guinea pigs:effects on ingestive behaviors and body weight. Brain Res, 322:41–48, 1984. BUTERA, P. C. Estradiol and the control of food intake. Physiol Behav, 99: 175-180, 2010. CALOGERO, A. E.; BAGDY, G.; MONCADA, M. L.; D'AGATA, R. Effect of selective serotonin agonists on basal, corticotrophin-releasing hormone- and vasopressin-induced ACTH release in vitro from rat pituitary cells. J Endocrinol, 136:381-7. 1993. CAMARGO, G. M. A.; CAMARGO, L. A. A.; SAAD, W. A. On a possible dual role for the lateral septal area 5-HT(1A) receptor system in the regulation of water intake and urinary excretion. Behav Brain Res. 215:122-82, 2010. CAREY, M. P.; DETERD, C. H.; DE KONING, J.; HELMERHORST, F.; DE KLOET, E. R. The influence of ovarian steroids on hypothalamic-pituitary-adrenal regulation in the female rat. Endocrinol, 144:311-321, 1995. CARLBERG, K. A.; FREGLY, M. J.; FAHEY, M. Effects of chronic estrogen treatment on water exchange in rats. Am J Physiol,; 247: 101-110, 1984. CAROLA, V.; D’OLIMPIO; BRUNAMONTI, E.; MANGIA, F.; RENZI, P. Evaluation of the elevated plus-maze and open-field tests for the assessment of anxiety-related behavior in inbred mice. Behavioral Brain Research, 134: 49-57, 2002. CAVALCANTE-LIMA, H. R.; BADAUÊ-PASSOS, D. Jr.; DE-LUCCA, J. R. W.; LIMA, H. R. C.; COSTA-e-SOUSA, R. H.; OLIVARES, E. L.; CEDRAZ-MERCEZ, P. L.; REIS, R. O .; MEDEIROS, M. A.; CÔRTES, W. S.; REIS, L. C. Chronic excitotoxic lesion of dorsal raphe nucleus induces sodium appetite. Braz J Med Biol Res, 38: 1669-1675. 2005ª. CAVALCANTE-LIMA, H. R.; LIMA, H. R. C.; COSTA-e-SOUSA, R. H.; OLIVARES, E. L.; CEDRAZ-MERCEZ, P. L.; REIS, R. O.; BADAUÊ-PASSOS, D. Jr.; DE-LUCCA, J. R. W.; MEDEIROS, M. A.; CÔRTES, W. S.; REIS, L. C. Dipsogenic stimulation in ibotenic NDR-lesioned rats induces concomitant sodium appetite. Neurosci Lett, 374: 5-10, 2005b. CHALMERS, D. T.; LOVENBERG, T. W.; DE SOUZA, E. B. Localization of novel corticotropin-releasing factor receptor (CRH2) mRNA expression to specific subcortical nuclei in rat brain: comparison with CRH1 receptor mRNA expression. J Neurosci. 10:6340-6350, 1995. CHAMIENIA, A. L. & JOHNS, E. J. The renal functional responses to 5-HT1A receptor agonist, flesinoxan, in anaesthetized, normotensive rat. Br J Pharmacol. 112:214-218, 1994. CHATAIGNEAU, T & SCHINI-KERTH, V. B. Vascular effects of ovariectomy and chronic oestrogen treatment in rats: controversy or experimental protocol diversity? Brit J Pharmacol. 144:161–163, 2005. 69 CHAROENPHANDHU, J.; TEERAPORNPUNTAKIT, J.; NUNTAPORNSAK, A.; KRISHNAMRA, N.; CHAROENPHANDHU N. Anxiety-like behaviors and expression of SERT and TPH in the dorsal raphé of estrogen- and fluoxetine-treated ovariectomized rats. Pharmacol Biochem Behav. 98:503-510. 2011. CHOLERIS, E.; THOMAS, A.W.; KAVALIERS, M.; PRATO, F.S. A detailed ethological analysis of the mouse open field test: effects of diazepam, chlordiazepoxide and an extremely low frequency pulsed magnetic field. Neuroscience and Biobehavioral Reviews. 25: 235-260, 2001. CLARK, J. A.; ALVES, S.; GUNDLAH, C.; ROCHA, B.; BIRZIN, E. T.; CAI, S. J.; FLICK, R.; HAYES, E.; HO, K.; WARRIER, S.; PAI, L.; YUDKOVITZ, J.; FLEISCHER, R.; COLWELL, L.; LI, S.; WILKINNSO, H.; SCHAEFFER, J.; WILKENING, R.; MATTINGLY, E.; HAMMOND, M.; ROHRER, S. P. Selective estrogen receptor-beta (SERM-beta) compounds modulate raphe nuclei tryptophan hydroxylase-1 (TPH-1) mRNA expression and cause antidepressant-like effects in the forced swim tes. Neuropharmacology. 63:1051-1063, 2012. CLARK, M. S.; MCDEVITT, R. A.; NEUMAIER, J. F. Quantitative mapping of tryptophan hydroxylase-2, 5-HT1A, 5-HT1B, and serotonin transporter expression across the anteroposterior axis of the rat dorsal and median raphe nuclei. J Comp Neurol 498: 611-623, 2006. CLARK, J. T.; CHAKRABORTY-CHATTERJEE, M.; HAMBLIN, M.; WYSS, J. M.; FENTIE, I. H. Estrogen depletion differentially affects blood pressure depending on age in Long-Evans rats. Endocrine 25: 173-186, 2004. . COLLIN, M.; HÅKANSNSO-OVESJÖ, M. L.; MISANE, I.; OGREN, S. O.; MEISTER, B. Decreased 5-HT transporter mRNA in neurons of the dorsal raphe nucleus and behavioral depression in the obese leptin-deficient ob/ob mouse. Brain Res Mol Brain Res, 81: 51-61, 2000. COOPER, S. J,; FRYER, M. J.; NEILL, J. C. Specific effect of putative 5-HT1A, agonists, 8-OH-DPAT and gepirone, to increase hypertonic saline consumption in the rat. Evidence against a general hyperdipsic action. Physiol Behav, 43: 533-537, 1988. COOPER, S. J. & CICCOCIOPPO R. Effect of selective 5-HT1 agonists in water deprived rats on salt intake in two-choice tests. Pharmacol Biochem Behav, 45: 513-518, 1993. CROWLEY, R. S & AMICO, J. A. Gonadal steroid modulation of oxytocin and vasopressin gene expression in the hypothalamus of the osmotically stimulated rat. Endocrinol, 133:2711-2718, 1993. CURTIS, K. S. Estrogen and the central control of body fluid balance. Physiol Behav. 97:180-92, 2009. DAENDEE, S.; THONGNSOG, B.; KALANDAKANOND-THONGNSOG, S. Effects of time of estrogen deprivation on anxiety-like behavior and GABAA receptor plasticity in ovariectomized rats. Behav Brain Res, 246:86-93, 2013. 70 DAHLSTROM, A. & FUXE, K. Localization of monoamines in the lower brain stem, Experientia 20: 398–399, 1964. DALMASSO, C.; AMIGONE, J. L. M.; VIVAS, L Serotonergic system involvement in the inhibitory action of estrogen on induced sodium appetite in female rats. Physiology & Behavior 104: 398-407, 2011. DAY, H. E.; GREENWOOD, B. N.; HAMMACK, S. E.; WATKINS, L. R.; FLESHNER, M.; MAIER, S. F.; CAMPEAU, S. Differential expression of 5HT-1A, alpha 1b adrenergic, CRH-R1, and CRH-R2 receptor mRNA in serotonergic, gamma-aminobutyric acidergic, and catecholaminergic cells of the rat dorsal raphe nucleus. J Comp Neurol, 474: 364-378, 2004. DAVIS, J. O. & FREEMAN, R. H. Mechanisms regulating renin release. Physiol Rev, 56:1-56. 1976. DEAKIN, J. F. W. & GRAEFF, F.G. 5-HT and mechanisms of defence. Phychopharmacol, 5: 305-315. 1991. DEMETRIO, F. N.; RENNÓ, J. JR.; GIANFALDONI, A.; GONÇALVES, M.; HALBE, H. W.; FILHO, A. H.; GORENSTEIN, C. Effect of estrogen replacement therapy on symptoms of depression and anxiety in non-depressive menopausal women: a randomized double-blind, controlled study. Arch Womens Ment Health, 14:479-86, 2011. DHILLON, H.; ZIGMAN, J. M.; YE, C.; LEE, C. E.; MCGOVERN, R. A.; TANG, V.; KENNY, C .D.; CHRISTIANSEN, L. M.; WHITE, R. D.; EDELSTEIN, E. A.; COPPARI, R.; BALTHASAR, N.; COWLEY, M. A.; CHUA, JR. S.; ELMQUIST, J. K.; LOWELL, B. B. Leptin directly activates SF1 neuronsin the VMH, and this action by leptin is required for normal body-weight homeostasis. Neuron 49, 191–203, 2006. DIBONA, G. F. Physiology in perspective: The Wisdom of the Body. Neural control of the kidney. Am J Physiol Regul Integr Comp Physiol, 289:633-641. 2005. DONNER, N. & HANDA, J. R. Estrogen receptor beta regulates the expression of tryptophan-hydroxylase 2 mRNA within serotonergic neurons of the rat dorsal raphe nuclei. Neuroscience, 163: 705-718, 2009. DUBEY, R. K & JACKNSO, E. K. Estrogen-induced cardiorenal protection: potential cellular, biochemical and molecular mechanisms. Am J Physiol Renal Physiol;280:365–388. 2001 ELIAS, P. C. L.; ELIAS, L. L. K.; MOREIRA, A. C. Padronização do teste de infusão de salina hipertônica para o diagnóstico de diabetes insípido com dosagem da vasopressina plasmática. Arq Bras Endocrinol Metabol, 42:198-204, 1998. EISENFELD, A. J.; ATEN, R.; WEINBERGER, M.; HASELBACHER, G.; HALPERN, K.; KRAKOFF, L. Estrogen receptor in the mammalian liver. Science, 19:862-865, 1976. 71 EINSO, A. S.; TEMPLE, D. L. Buspirone: review of its pharmacology and current perspectives on the mechanism of action. Am J Med, 80:1–9. 1989. ESCHER, G. Hyperaldosteronism in pregnancy. Ther Adv Cardiovasc Dis. 3:123-132. 2009. ESTRADA-CAMARENA, E.; LÓPEZ-RUBALCAVA, C.; HERNÁNDEZ-ARAGÓN, A.; MEJÍA-MAURIES, S.; PICAZO, O.; Long-term ovariectomy modulates the antidepressant-like action of estrogens, but not of antidepressants. J Psychopharmacol. 10:1365-1377, 2011. FARGIN, A.; RAYMOND, J. R.; LOHSE, M. J.; KOBILKA, B. K.; CARON, M. G.LEFKOWITZ, R. J.; The genomic clone G-21 which resembles a β-adrenergic receptor sequence encodes the 5-HT1A receptor. Nature, 335:358–360, 1988. FERNANDEZ-RUIZ, J. J.; BUKHARI, A. R.; MARTINEZ-ARRIETA, R.; TRESGUERRES, J. A.; RAMOS, J. A. Effects of estrogens and progesterone on the catecholaminergic activity of the adrenal medulla in female rats. Life Sci; 42: 1019- 1028, 1988. FINDLAY, A. L.; FITZSIMONS, J. T.; KUCHARCZYK J. Dependence of spontaneous and angiotensin-induced drinking in the rat upon the oestrous cycle and ovarian hormones. J Endocrinol 82: 215-225, 1979. FITZSIMONS, J. T. Angiotensin, thirst, and sodium appetite. Physiol Rev, 78: 583-686, 1998. FRANCHINI, L. F M. & VIVAS, L. Distribution of Fos immunoreactivity in rat brain after sodium consumption induced by peritoneal dialysis. Am J Physiol 276: 1180-11187, 1995. FRANCHINI, L. F.; JOHNNSO, A. K.; DE OLMOS, J.; VIVAS, L. Sodium appetite and Fos activation in serotonergic neurons. Am J Physiol 282: 235-243, 2002. FREGLY, M. J. Effect of an oral contraceptive on NaCl appetite and preference threshold in rats. Pharmacol Biochem Behav, 1:61–65, 1973. FREGLY, M. J. & THRASHER, T. N. Attenuation of angiotensin-induced water intake in estrogen-treated rats. Pharmacol Biochem Behav 9: 509-514, 1978. FRIEDMAN, J. M. & HALAAS, J. L. Leptin and the regulation of body weight in mammals. Nature 395, 763–770. 1998. FRYE, C.A.; SUMIDA, K.; DUDEK, B. C.; HARNEY, J. P.; LYDON, J. P.; O'MALLEY, B. W.; PFAFF, D. W.; RHODES, M. E. Progesterone's effects to reduce anxiety behavior of aged mice do not require actions via intracellular progestin receptors. Psychopharmacology, 63:312-322. 2006. FONSECA, F. V.; MECAWI, A. S.; ARAUJO, I. G.; ALMEIDA-PEREIRA, G.; MAGALHÃES-NUNES, A. P.; BADAUÊ-PASSOS, D Jr.; REIS LC. Role of the 5-HT1A 72 somatodendritic autoreceptor in the dorsal raphe nucleus on salt satiety signaling in rats. Exp. Neurology, 217: 353-360, 2009. FU, W.; LE MAÎTRE, E.; FABRE, V.; BERNARD, J. F.; DAVID, XU. ZQ.; HÖKFELT, T. Chemical neuroanatomy of the dorsal raphe nucleus and adjacent structures of the mouse brain.J Comp Neurol, 518:3464-3494. 2010. GAMBLING, L.; DUNFORD, S.; WILNSO, C. A.; MCARDLE, H. J.; BAINES, D. L. Estrogen and progesterone regulate alpha, beta, and gamma ENaC subunit mRNA levels in female rat kidney. Kidney Int, 65: 1774-1781, 2004. GALLAGHER, P. E.; LI, P.; LENHART, JR.; CHAPPELL, M. C.; BROSNIHAN, K. B. Estrogen regulation of angiotensin converting enzyme mRNA. Hypertension 33: 323–328, 1999. GALEEVA, A. Y.; TUOHIMA, A. P.; SHALYAPINA, V. G. The role of sex steroids in forming anxiety states in female mice. Neurosci Behav Physiol., 3:415-420. 2003 GARTSIDE, S. E.; UMBERS, V.; HAJOS, M.; SHARP, T. Interaction between a selective 5-HT1A receptor antagonist and na SSRI in vivo: Effects on 5-HT cell firing and extracellular 5-HT. Br J Pharmacol, 115:1064–1070, 1995. GEARY, N.; ASARIAN, L.; KORACH, K.S.; PFAFF, D. W.; OGAWA. S. Deficits in E2dependent control of feeding, weight gain, and cholecystokinin satiation in ER-alpha null mice. Endocrinology, 142: 4751–4757, 2001. GEARY, N. Estradiol, CCK and satiation. Peptides, 22: 1251–1263, 2001. GERRITS, M.; GROOTKARIJN, A.; BEKKERING, B. F.; BRUINSMA, M.; DEN BOER, J. A.; TER HORST, G. J. Cyclic estradiol replacement attenuates stress-induced c-Fos expression in the NPV of ovariectomized rats. Brain Res Bull. 67:147-155, 2005. GODINO, A.; GIUSTI-PAIVA, A.; ANTUNES-RODRIGUES, J.; VIVAS, L. Neurochemical brain groups activated after an isotonic blood volume expansion in rats. Neuroscience 133: 493-505, 2005. GODINO, A.; DE LUCA, L. A. Jr.; ANTUNES-RODRIGUES, J.; VIVAS L. Oxytocinergic and serotonergic systems involvement in sodium intake regulation: satiety or hypertonicity markers? Am J Physiol 293: 1027-1036, 2007. GONÇALVES, I.; SALDANHA, C.; MARTINS E SILVA, J. Beta-estradiol effect on erythrocyte aggregation--a controlled in vitro study. Clin Hemorheol Microcirc, 25:127-134. 2001. GRAEFF, F. G. Serotonin, the periaqueductal gray an panic. Neurosci Biobehav Rev, 28: 239-259. 2004. GRAEFF, F. G.; GUIMARÃES, F. S.; DE ANDRADE, T. G.; DEAKIN, J. F.; Role of 5-HT in stress, anxiety, and depression. Pharmacol Biochem Behav, 54:129-141, 1996. 73 GRAVES, N. S.; HAYES, H.; FAN, L.; CURTIS, K. S. Time course of behavioral, physiological, and morphological changes after estradiol treatment of ovariectomized rats. Physiol Behav, 103:261-267. 2011 GRIEBEL, G. 5-Hydroxytryptamine-interacting drugs in animal models of anxiety disorders: more than 30 years of research. Pharmacol Ther, 65:319-395, 1995. GRIGNASCHI, G.; INVERNIZZI, R. W.; FANELLI, E.; FRACASSO, C.; CACCIA, S.; SAMANIN, R. Citalopram-induced hypophagia is enhanced by blockade of 5-HT1A receptors: Role of 5-HT2C receptors. Br J Pharmacol, 124:1781–1787, 1998. GUTKOWSKA, J.; THIBAULT, G.; JANUSZEWICZ, P.; CANTIN, M.; GENEST, J. Direct radioimmunoassay of atrial natriuretic factor. Biochem Biophys Res Commun, 122:593-601, 1984. GUNDLAH, C.; ALVES, E. S.; CLARK, A. J.; PAI, L-Y.; SCHAEFFER, M. J.; ROHRER, P. S. Estrogen Receptor-β Regulates Tryptophan Hydroxylase-1 Expression in the Murine Midbrain Raphe. Biol. Psychiatry, 57: 938–942, 2005. HAANWINCKEL, M. A.; ELIAS, L. K.; FAVARETTO, A. L.; GUTKOWSKA, J.; MCCANN, S. M.; ANTUNES-RODRIGUES, J. Oxytocin mediates atrial natriuretic peptide release and natriuresis after volume expansion in the rat. Proc Natl Acad Sci USA, 92:7902-7906, 1995. HAMON, M.; BOURGOIN, S.; EL MESTIKAWY, S.; GOETZ, C. Central serotonin receptors. Oxford: Blackwell science. 107-143. 1982. HANDLEY, S. L. & MITHANI, S. Effects of alpha-adrenoceptor agonists and antagonists in a maze-exploration model of 'fear'-motivated behaviour. Naunyn Schmiedebergs Arch Pharmacol. 327:1-5, 1984. HARIKUMAR, K. G.; JOHN, P. T.; CHATTOPADHYAY, A. Role of disulfides and sulfhydryl groups in agonist and antagonist binding in serotonin1A receptors from bovine hippocampus. Cell Mol Neurobiol, 2: 665-681, 2000. HARIKUMAR, K. G. & CHATTOPADHYAY, A. Modulation of agonist and antagonist interactions in serotonin 1A receptors by alcohols. FEBS Lett, 438: 96-100, 1998. HASHIMOTO, S.; INOUE, T.; KOYAMA, T. Effects of the coadministration of 5-HT1A receptor antagonists with na SSRI in conditioned fear stress- induced freezing behavior. Pharmacol Biochem Behav, 58:471–475, 1997. HASEGAWA, H.; KOJIMA, M.; OGURO, K.; NAKANISHI, N. Rapid turnover of tryptophan hydroxylase in serotonin producing cells: demonstration of ATP-dependent proteolytic degradation. FEBS Lett, 368:151-154. 1995 HARVEY, P. J.; WING, L. M.; SAVAG, E. J.; MOLLOY, D. The effects of different types and doses of oestrogen replacement therapy on clinic and ambulatory blood pressure and the renin-angiotensin system in normotensive postmenopausal women. J Hypertens 17:405–411, 1999. 74 HENSLER J. G. Regulation of 5-HT1A receptor function in brain following agonist or antidepressant administration. Life Science, v.72, p.1665-1682, 2003. HERITAGE, A. S.; STUMPF, W. E.; SAR, M.; GRANT, L. D. Brainstem catecholamine neurons are target sites for sex steroid hormones. Science, 207:1377–1379. 1980. HETEM, L. A.; DE SOUZA, C. J.; GUIMARÃES, E. S.; ZUARDI, A. W.; GRAEFF, F. G. Effect of d-fenfluramine on human experimental anxiety. Psychopharmacology. 127:276-282, 1996. HEESCH, C. M. & ROGERS, R. C. Effects of pregnancy and progesterone metabolites on regulation of sympathetic outflow. Clin Exp Pharmacol Physiol, 22: 136-142, 1995. HINOJOSA-LABORDE, C.; LANGE, D. L.; HAYWOOD, J. R. Role of female sex hormones in the development and reversal of dahl hypertension. Hypertension, 35: 484-489, 2000. HINOJOSA-LABORDE, C.; CRAIG, T.; ZHENG, W.; JI, H.; HAYWOOD, JR.; BERG, K. Ovariectomy augments hypertension in aging female Dahl salt-sensitive rats. Hypertension, 44: 405-409, 2004. HIROI, R.; MCDEVITT, R. A.; NEUMAIER, J. F. Estrogen Selectively Increases Tryptophan Hydroxylase-2 mRNA Expression in Distinct Subregions of Rat Midbrain Raphe Nucleus: Association between Gene Expression and Anxiety Behavior in the Open Field. Biol Psychiatry 2006. HIROI, R. & NEUMAIER, J. F. Differential effects of ovarian steroids on anxiety versus fear as measured by open field test and fear-potentiated startle. Behav Brain Res, 166: 93-100. 2006. HIROI, R. & NEUMAIER, J. F. Estrogen decreases 5-HT1b autoreceptor mrna in selective subregion of rat dorsal raphe nucleus: inverse association between gene expression and anxiety behavior in the open field. Neuroscience, 158: 456–464, 2009. HJORTH, S.; BENGTSNSO, H. J.; KULLBERG, A.; CARLZON, D.; PEILOT, H.; AUERBACH S. B. Serotonin autoreceptor function and antidepressant drug action. Journal of Psychopharmacology, 4: 177-182, 2000. HRABOVSZKY, E.; KALLO, I.; STEINHAUSER, A.; MERCHENTHALER, I.; COEN, C. W.; PETERSEN, S. L. et al. Estrogen receptor-beta in oxytocin and vasopressin neurons of the rat and human hypothalamus: Immunocytochemical and in situ hybridization studies. J Comp Neurol 2004; 473: 315-333, 2012. ISGOR, C.; CECCHI, M.; KABBAJ, M.; AKIL, H.; WATNSO, S. J. Estrogen receptor beta in the paraventricular nucleus of hypothalamus regulates the neuroendocrine response to stress and is regulated by corticosterone. Neuroscience, 121:837-845, 2003. 75 JACOBS, B. L. & AZMITIA, E. C. Structure and function of the brain serotonin system. Physiol Rev, 72:165-229, 1992. JONKLAAS, J. & BUGGY J. Angiotensin-estrogen interaction in female brain reduces drinking and pressor responses. Am J Physiol 247: 167-172, 1984. JONKLAAS, J. & BUGGY, J. Angiotensin-estrogen central interaction: localization and mechanism. Brain Res 326: 239-249, 1985. JØRGENSEN, H.; KJAER, A.; KNIGGE, U.; MØLLER, M.; WARBERG, J. Serotonin stimulates hypothalamic mRNA expression and local release of neurohypophysial peptides. J Neuroendocrinol, 15:564-571. 2003 LARSEN, P. J.; HAY-SCHMID, T. A.; VRANG, N.; MIKKELSEN, J. D. Originof projections from the midbrain raphe nuclei to the hypothalamic paraventricular nucleus in the rat: a combined retrograde and anterograde tracing study. Neuroscience 70:963–988 1996. LAURELL, C. B. & RANNEVIK, G. J. A compariNSO of plasma protein changes induced by danazol, pregnancy, and estrogens. Clin Endocrinol Metab. 5:719-725, 1979. LIMA, H. R. C.; CAVALCANTE-LIMA, H. R.; CEDRAZ-MERCERZ, P. L.; COSTA-E-SOUSA, R. H.; OLIVARES, E. L.; BADAUÊ-PASSOS, D. Jr.; MEDEIROS, M. A.; CÔRTES, W. S.; REIS, L. C. Brain serotonin depletion enhances the sodium appetite induced by sodium depletion or beta-adrenergic stimulation. An Acad Bras Cienc 76: 85-92. 2004. LIND, R. W. Bi-directional, chemically specified neural connections between the subfornical organ and the midbrain raphe system. Brain Res, 384:250-261, 1986. LU, N. Z. & BETHEA, C. L. Ovarian steroid regulation of 5-HT1A receptor binding and G protein activation in female monkeys. Neuropsychopharmacology 27: 12-24, 2002. LUND, T. D.; ROVIS, T.; CHUNG, W. C.; HANDA, R. J. Novel actions of estrogen receptor-beta on anxiety-related behaviors. Endocrinology146:797-807, 2005. KALIPATNAPU, S.; PUCADYIL, T. J.; HARIKUMAR, K. G.; CHATTOPADHYAY, A. Ligand binding characteristics of the human serotonin1A receptor heterologously expressed in CHO cells. Biosci Rep, 24:101-115, 2004. KASTENBERGER, I.; LUTSCH, C.; SCHWARZER, C. Activation of the G-protein-coupled receptor GPR30 induces anxiogenic effects in mice, similar to oestradiol. Psychopharmacology 221:527-535, 2012. KENSICKI, E.; DUNPHY, G.; ELY, D. Estradiol increases salt intake in female normotensive and hypertensive rats. J. appl. Physiol. 93:476-483, 2002. KIA, H. K.; BRISORGUEIL, M. J. HAMON, M. Ultrastructural localization of 5-hydroxytryptamine1A receptors in rat brain. J. Neurosci. Res. 46: 697–708. 1996. 76 KISLEY, L. R.; SAKAI, R. R.; FLUHARTY, S. J. Estrogen decreases hypothalamic angiotensin II AT1 receptor binding and mRNA in the female rat. Brain Res. 844: 34-42, 1999. KISER, R. S.; BROWN, C. A.; SANGHERA, M. K.; GERMAN, D. C. Dorsal raphe nucleus stimulation reduces centrally-elicited fearlikebehavior. Brain Res, 191:265–72. 1980. KITAY, J. I. Sex differences in adrenal cortical secretion in the rat. Endocrinol, 68:818–824, 1961. KLUSSMANN, E.; MARIC, K.; ROSENTHAL, W. The mechanisms of aquaporin control in the renal collecting duct. Rev Physiol Biochem Pharmacol, 141:33-95, 2000. KOBILKA, B. K.; FRIELLE, T.; COLLINS, S.; YANG-FENG, T.; KOBILKA, T. S.; FRANCKE, U.; LEFKOWITZ, R. J.; CARON, M. G. An intronless gene encoding a potential member of the family of receptors coupled to guanine nucleotide regulatory proteins. Nature, 329:75–79. 1987. KORTE, S. M.; KOOLHAAS, J. M.; WINGFIELD, J. C.; MCEWEN, B. S. The Darwinian concept of stress: benefits of allostasis and costs of allostatic load and the trade-offs in health and disease. Neurosci Biobehav Rev, 29:3–38. 2005. KOSS, W. A.; GEHLERT, D. R.; SHEKHAR, A. Different effects of subchronic doses of 17-beta estradiol in two ethologically based models of anxiety utilizing female rats. Horm Behav, 46:158–164. 2004 KRAUSE, E. G.; CURTIS, K. S.; DAVIS, L. M.; STOWE, JR.; CONTRERAS, R. J. Estrogen influences stimulated water intake by ovariectomized female rats. Physiol Behav, 79: 267-274, 2003. KUROS, K. I.; DE BOLD, M. L. Estrogen, natriuretic peptides and the renin–angiotensin system. Cardiovasc Res, 41:524–53, 1999. KUIPER, G. G.; CARLSNSO, B.; GRANDIEN, K.; ENMARK, E.; HAGGBLAD, J.; NILSNSO, S.; GUSTAFSNSO, J. A. CompariNSO of the ligand binding specificity and transcript tissue distribution of estrogen receptors alpha and beta. Endocrinology, 138:863–870. 1997. LEMOS, J. C.; ROTH, C. A.; MESSINGER, D. I.; GILL, H. K.; PHILLIPS, P. E.; CHAVKIN, C. Repeated stress dysregulates κ-opioid receptor signaling in the dorsal raphe through a p38α MAPK-dependent mechanism. J Neurosci. 36:1225-1236, 2012. LUND, T.; ROVIS, T.; CHUNG, W.; HANDA, R. Novel actions of estrogen receptor-beta on anxiety-related behaviors. Endocrinology, 146:797–807. 2005. LUND, T. D.; HINDS, L. R.; HANDA, R. J. The androgen 5alpha-dihydrotestosterone and its metabolite 5alphaandrostan- 3beta, 17beta-diol inhibit the hypothalamo-pituitary-adrenal response to stress by acting through estrogen receptor beta-expressing neurons in the hypothalamus. J Neurosci, 26:1448–1456. 2006. 77 MAACK, T. Role of atrial natriuretic factor in volume control. Kidney Int, 49: 1732–1737. 1996. MAGALHÃES-NUNES, A. P.; BADAUÊ-PASSOS, Jr. D.; VENTURA, R. R.; GUEDES, Jr. D. S.; ARAÚJO, J. P.; GRANADEIRO, P. C.; MILANEZ-BARBOSA, H. K.; COSTA-e-SOUSA, R. H.; MEDEIROS, M. A.; ANTUNES-RODRIGUES, J.; REIS, L. C. Sertraline, a selective serotoninreuptake inhibitor, affects thirst, salt appetite and plasma levels of oxytocin and vasopressin in rats. Exp Physiol, 92: 913-922, 2007. MARGATHO, L. O.; GIUSTI-PAIVA, A.; MENANI, J. V.; ELIAS, L. L.; VIVAS, L. M.; ANTUNESRODRIGUES, J. Serotonergic mechanisms of the lateral parabrachial nucleus in renal and hormonal responses to isotonic blood volume expansion. Am J Physiol, 297: 1190-1197. 2007. MARGATHO, L. O.; GODINO, A.; OLIVEIRA, F. R.; VIVAS, L.; ANTUNES-RODRIGUES, J. Lateral parabrachial afferent areas and serotonin mechanisms activated by volume expansion. Journal of Neuroscience Research, 86:3613–3621, 2008. MATTHES, S.; MOSIENKO, V.; BASHAMMAKH, S.; ALENINA, N.; BADER, M. Tryptophan hydroxylase as novel target for the treatment of depressive disorders. Pharmacology, 85:95-109, 2010. MCQUEEN, J. K.; WILNSO, H.; FINK, G. Estradiol-17b increases serotonin transporter (SERT) mRNA levels and the density of SERT-binding sites in female rat brain. Brain Res Mol Brain Res, 45:13–23, 1997. MECAWI, A.S.; VILHENA-FRANCO, T.; ARAUJO, I.G.; REIS, L.C.; ELIAS, L.L.; ANTUNES-RODRIGUES, J. Estradiol potentiates hypothalamic vasopressin and oxytocin neuron activation and hormonal secretion induced by hypovolemic shock. Am J Physiol Regul Integr Comp Physiol, 301: R905-15, 2011. MECAWI, A. S.; LEPLETIER, A.; ARAUJO, I.G. FONSECA, F.V. & REIS, L.C. Oestrogenic influence on brain AT1 receptor signalling on thirst and salt appetite in osmotic-stimulated and sodium-depleted rats. Exp. Physiol. 93, 1002–1010. 2008. MECAWI A. S.; LEPLETIER, A.; ARAUJO, I. G.; OLIVARES E. L.; REIS L. C. Assessment of brain AT1-receptor on the nocturnal basal and angiotensin-induced thirst and sodium appetite in ovariectomised rats. J Renin Angiotensin Aldosterone Syst, 8: 169-175, 2007. MEDEIROS, M. A.; REIS, L. C.; MELLO, L. E. Stress-induced c-Fos expression is differentially modulated by dexamethaNSOe, diazepam and imipramine. Neuropsychopharmacology 30: 1246-1256, 2005. MIKKELSEN, J. D.; JENSEN, J. B.; ENGELBRECHT, T.; MORK, A. D-fenfluramine activates rat oxytocinergic and vasopressinérgico neurons through different mechanisms. Brain Res 1999;851: 247–251. 78 MIYATA, S.; NAKASHIMA, T.; KIYOHARA, T. Expression of c-fos immunoreactivity in the hypothalamic magnocellular neurons during chronic osmotic stimulations. Neurosci. Lett, 175: 63-66, 1994. MITCHELL, P. J. & REDFERN, P. H. Potentiation of the timedependent, antidepressant-induced changes in the agonistic behaviour of resident rats by the 5-HT1A receptor antagonist, WAY-100635. Behav Pharmacol, 8: 585–606, 1997. MYSTKOWSKI, P. & SCHWARTZ, M. W. Gonadal steroids and energy homeostasis in the leptin era. Nutrition, 16: 937–946, 2000. MONTES, R. & JOHNNSO, A. K. Efferent mechanisms mediating renal sodium and water excretion induced by centrally administered serotonin. Am J Physiol. 259:1267-1273, 1990. MOSIENKO, V.; BERT, B.; BEIS, D.; MATTHES, S.; FINK, H.; BADER, M.; ALENINA, N. Exaggerated aggression and decreased anxiety in mice deficient in brain serotonin. Transl Psychiatry, 92:118-122, 2012. NICOLL, R. A.; MALENKA, R. C.; KAUER, J. A. Functional compariNSO of neurotransmitter receptor subtypes in mammalian central nervous system. Physiol Rev, 70:513-565, 1990. NOGUEIRA, R. L.; GRAEFF, F. G. Role of 5-HT receptor subtypes in the modulation of aversion generated in the dorsal periaqueductal gray. Pharmacol Biochem Behav, 52:1–6. 1995. NOMURA, M; AKAMA, K.T.; ALVES, S. E. X. KORACH, V.; GUSTAFSNSO, J.-A.; PFAFF D.W.; GAWA, O. Differential distribution of estrogen receptor(er)- and er- in the mid brain raphe nuclei and periaqueductal gray in male mouse:predominant role of er- β in mid brain serotonergic systems. Neuroscience, 130: 445–456, 2005. OCHEDALSKI, T.; SUBBURAJU, S.; WYNN, P. C.; AGUILERA, G. Interaction between oestrogen and oxytocin on hypothalamic-pituitary-adrenal axis activity. J Neuroendocrinol, 19:189-197, 2007. OELKERS, W. Drospirenone, a progestogen with antimineralocorticoid properties: a short review. Mol. Cell. Endocrinol. 217: 255–261. 2004. OLIVARES, E. L.; COSTA-E-SOUSA, R. H.; CAVALCANTE-LIMA, H. R.; LIMA, H. R.; CEDRAZ-MERCEZ, P. L.; REIS, L.C. Effect of electrolytic lesion of the dorsal raphe nucleus on water intake and sodium appetite. Braz. J. Med. Biol. Res, 36: 1709–1716. 2003. OHLIGER-FRERKING, P.; HORWITZ, B. A.; HOROWITZ, J. M. Serotonergic dorsal raphe neurons from obese zucker rats are hyperexcitable. Neuroscience, 120: 627-634. 2003. OIAN, P.; TOLLAN, A.; FADNES, H.O.; NODDELAND, H.; MALTAU, J. M. Transcapillary fluid dynamics during the menstrual cycle. Am J Obstet Gynecol, 156:952–955. 1987. 79 ORSHAL, J. M. & KHALIL, R. A. Gender, sex hormones, and vascular tone. Am J Physiol Regul Integr Comp Physiol;286:233–249. 2004 OSHIMA, A.; FLACHSKAMM, C.; REUL, J. M.; HOLSBOER, F.; LINTHORST, A. C. Altered serotonergic neurotransmission but normal hypothalamic-pituitary-adrenocortical axis activity in mice chronically treated with the corticotropin-releasing hormone receptor type 1 antagonist NBI 30775. Neuropsychopharmacology, 28: 2148-2159, 2003. OSTERLUND, M.K., 2010. Underlying mechanisms mediating the antidepressant effects of estrogens. Biochim. Bioph ys. Acta 10: 1136-1144. 2010. OYOLA, M. G.; PORTILLO, W.; REYNA, A.; FORADORI, C. D.; KUDWA, A.; HINDS, L.; HANDA, R. J.; MANI, S. K. Anxiolytic effects and neuroanatomical targets of estrogen receptor-β (ERβ) activation by a selective ERβ agonist in female mice. Endocrinology. 153:837-846. 2012. PAN, L. & GILBERT, F. Activation of 5-HT1A receptor subtype in the paraventricular nuclei of the hypothalamus induces CRH and ACTH release in the rat. Neuroendocrinology, 56:797-802, 1992. PANDARANANDAKA, J.; POONYACHOTI, S.; KALANDAKANOND-THONGNSOG, S. Differential effects of exogenous and endogenous estrogen on anxiety as measured by elevated T-maze in relation to the serotonergic system. Behav Brain Res. 1981:142-148, 2009. PAXINOS, G. & WATNSO C. The Rat Brain in Stereotaxic Coordinates. Academic Press, London. 1986. PELLOW, S.; CHOPIN, P.; FILE, S. E.; BRILEY, M. J. Validation of open:closed arm entries in an elevated plus-maze as a measure of anxiety in the rat. Neurosci Methods, 14:149-167, 1985. PECHERE-BERTSCHI, A.; MAILLARD, M.; STALDER, H. Renal segmental tubular response to salt during the normal menstrual cycle. Kidney Int, 61:425–431, 2002. PEYSNER, K. & FORSLING, M. L. Effect of ovariectomy and treatment with ovarian steroids on vasopressin release and fluid balance in the rats. Endocrinol, 124:277-284, 1990. PISZCZEK, L.; SCHLAX, K.; WYRZYKOWSKA, A.; PISZCZEK, A.; AUDERO, E.; THIL, O.; GROSS, C. Serotonin 1A auto-receptors are not sufficient to modulate anxiety in mice. Eur J Neurosci, [Epub ahead of print], 2013. PINTO-MEZA, A.; USALL, J.; SERRANO-BLANCO, A.; SUAREZ, D.; HARO, J. M. Gender differences in response to antidepressant treatment prescribed in primary care. Does menopause make a difference? J Affect Disord, 93:53–60. 2006 POPOVA, N. K.; NAUMENKO, V. S.; CYBKO, A. S.; BAZOVKINA, D. V. Receptor-genes cross-talk: effect of chronic 5-HT(1A) agonist 8-hydroxy-2-(di-n- 80 propylamino) tetralin treatment on the expression of key genes in brain serotonin system and on behavior. Neuroscience, 169:229-235, 2010. RAMOS, A.; BERTON, O., PIERRE, M.; CHAULOFF, F. A multiple-test study of anxiety-related behaviors in six inbred rat strains. Behavioral Brain Research, 85: 57-69, 1997. RAYMOND, J. R.; MUKHIN, Y. V.; GELASCO, A.; TURNER J.; COLLINSWORTH, G.; GETTYS, T. W.; GREWAL, J. S. & GARNOVSKAYA, M. N. Multiplicity of mechanisms of serotonin receptor signal transduction. Pharmacol Ther, 92:179-212, 2001. RAYMOND, J. R.; MUKHIN, Y. V.; GETTYS, T. W.; GARNOVSKAYA, M. N. The recombinant 5-HT1A receptor: G protein coupling and signaling pathways. Br. J. Pharmacol, 127:1751–1764, 1999. RECKELHOFF, J. F. & FORTEPIANI, L. A. Novel mechanisms responsible for postmenopausal hypertension. Hypertension 43: 918-923, 2004. REIS, L. C. Role of the serotoninergic system in the sodium appetite control. An Acad Bras Cienc 79: 261-283. 2007. REIS, L. C.; RAMALHO, M. J.; FAVARETTO, A. L.; GUTKOWSKA, J.; MCCANN, S. M.; ANTUNES-RODRIGUES, J. Participation of the ascending serotonergic system in the stimulation of atrial natriuretic peptide release. Proc Nat Acad Sci USA 91: 12022-12026. 1994. REIS, L. C.; RAMALHO, M. J.; ANTUNES-RODRIGUES, J. Effect of central administration of serotoninergic agonists on electrolyte excretion control. Braz J M Biol Res, 24: 633-641, 1991. RESSLER, K. J. & NEMEROFF, C. B. Role of serotonergic and noradrenergic systems in the pathophysiology of depression and anxiety disorders. Depress Anxiety 12: 2–19. 2000. RIAD, M.; WATKINS, K.C.; DOUCET, E.; HAMON, M.; DESCARRIES, L. Agonist-induced internalization of serotonin-1A receptors in the dorsal raphe nucleus (autoreceptors) but not hippocampus (heteroreceptors). Journal of Neuroscience, 21: 8378–8386, 2001. ROBICHAUD, M. & DEBONNEL, G. Oestrogen and testosterone modulate the firing activity of dorsal raphe nucleus serotonergic neurones in both male and female rats. J Neuroendocrinol 17: 179-185, 2005. ROGERS, J. L.; MITCHELL, A. R.; MARIC, C.; SANDBERG, K.; MYERS, A.; MULRONEY, S. E. Effect of sex hormones on renal estrogen and angiotensin type 1 receptors in female and male rats. Am J Physiol Regul Integr. Comp Physiol, 292:794–799, 2007. 81 ROSSI, D. V.; DAI, Y.; THOMAS, P.; CARRASCO, G. A.; DONCARLOS, L. L.; MUMA, N. A, LI, Q. Estradiol-induced desensitization of 5-HT1A receptor signaling in the paraventricular nucleus of the hypothalamus is independent of estrogen receptor-beta. Psychoneuroendocrinology. 7:1023-1033. 2010. RUBINOW, D. R.; SCHMIDT, P. J.; ROCA, C. A. Estrogen-serotonin interactions: implications for affective regulation. Biol Psychiatry, 44:839–850, 1998. RUGINSK, S.G.; LOPES DA SILVA, A.; VENTURA, R. R.; ELIAS, L. L.; ANTUNES-RODRIGUES, J. Central actions of glucocorticoids in the controlo f body fluid homeostasis: review. Braz J Med Biol Res, 42: 61-67, 2007. SANSOM, J.; ROGERS, K.; WOOD, J. L. Blood pressure assessment in healthy cats and cats with hypertensive retinopathy. Am J Vet Res, 65: 245-252, 2004. SIMONIAN, S. X. & HERBINSO, A. E. Differential expression of estrogen receptor alpha and beta immunoreactivity by oxytocin neurons of rat paraventricular nucleus. J Neuroendocrinol, 11:803-806, 1997. SANTOLLO, J.; MARSHALL, A.; DANIELS, D. Activation of membrane-associated estrogen receptors decreases food and water intake in ovariectomized rats. Endocrinology, 154:320-229, 2013. SCHUNKER, T. H.; DANSER, A. H.; HENSEH, W.; DERKX, F. H.; KURZINGE, R. S.; RIEGGER, G. A. Effects of estrogen replacement therapy on the renin-angiotensin system in postmenopausal women. Circulation, 95:39–45, 1997. SHARE, L. Role of vasopressin in cardiovascular regulation. Physiol Rev. 68:1248-84, 1988. SANCHEZ, L. R.; REDDYA, P. A.; CENTENOA, L. M.; HENDERNSOA, A. J.; BETHEA, L. C. A second tryptophan hydroxylase isoform, TPH-2 mRNA, is increased by ovarian steroids in the raphe region of macaques. Molecular Brain Research, 135: 194–203, 2005. SILVA, L. E. C.; CASTRO, M. M.; AMARAL, F.C.; ANTUNES-RODRIGUES, J.; ELIAS, L.L.K. Estradiol-induced hypophagia is associatedwith the differential mRNA expression of hypothalamic neuropeptides. Brazilian Journal of Medical and Biological Research, 43: 759-766, 2010. SIMERLY RB, CHANG C, MURAMATSU M, SWANNSO LW. Distribution of androgen and estrogen receptor mRNA-containing cells in the rat brain: an in situ hybridization study. J Comp Neurol, 294:76–95, 1990. SOUBRIÉ, P. Serotonergic neurons and behavior. J Pharmacol, 17:107-112, 1986. STACHENFELD, N. S.; SILVA, C. S.; KEEFE, D. L.; KOKOSZKA, C. A.; NADEL, E. R. Effects of oral contraceptives on body fluid regulation. J Appl Physiol, 87:1016–1025. 1999 82 SUZUKI, H.; BARROS, R.P.; SUGIYAMA, N.; KRISHNAN, V.; YADEN, B.C.; KIM, H.J.; WARNER, M.; GUSTAFSNSO, J.Å. Involvement of estrogen receptor β in maintenance of serotonergic neurons of the dorsal raphe. Mol Psychiatry, 18: 674-80, 2013. SOMPONPUN, S. J.; JOHNNSO, A. K.; BELTZ, T.; SLADEK, C. D. Estrogen receptor-alpha expression in osmosensitive elements of the lamina terminalis: regulation by hypertonicity. Am J Physiol Regul Integr Comp Physiol, 287: 661-669, 2004. NSOG, D.; ARIKAWA, E.; GALIPEAU, D. M.; YEH, J. N.; BATTELL, M. L.; YUEN, V. G.; MCNEILL, J. H. Chronic estrogen treatment modifies insulin-induced insulin resistance and hypertension in ovariectomized rats. Am J Hypertens 18: 1189-1194, 2005. SOTELO, C.; CHOLLEY, B.; EL MESTIKAWY, S.; GOZLAN, H.; HAMON, M. Direct Immunohistochemical evidence of the existence of 5-HT1A autoreceptors on serotoninergic neurons in the brain raphe nuclei. Eur. J. Neurosci, 2: 1144–1154, 1990. STACHENFELD, N. S.; DIPIETRO, L.; PALTER, S. F.; NADEL, E. R. Estrogen influences osmotic secretion of AVP and body water balance in postmenopausal women. Am J Physiol, 274:187–195, 1998. STEIN, J. M.; LIND, R. W.; JOHNNSO, A. K. Central serotonergic influences on renal electrolyte and water excretion. Neuropharmacology, 26: 1685-1692. 1987. STEINBUSCH, H. W. Distribution of serotonin-immunoreactivity in the central nervous system of the rat-cell bodies and terminals. Neuroscience, 6:557-618, 1981. STEPHENNSO, L. A & KOLKA, M. A. Plasma volume during heat stress and exercise in women. Eur J Appl Physiol Occup Physiol 57: 373-381, 1988. STACHENFELD, N. S.; KEEFE, D. L.; TAYLOR, H. S. Responses to a saline load in gonadotropin-releasing hormone antagonistpretreated premenopausal women receiving progesterone or estradiol-progesterone therapy. J Clin Endocrinol Metab, 90: 386-394, 2005. STRICKER, E. M.; THIELS, E.; VERBALIS, J. G. Sodium appetite in rats after prolonged dietary sodium deprivation: a sexually dimorphic phenomenon. Am J Physiol, 260: 1082- 1088, 1991. STRICKER, E. M. & VERBALIS, J. G. Central inhibition of salt appetite by oxytocin in rats. Regul. Pept, 66:83-5, 1996. SUMNER, B. E.; GRANT, K. E.; ROSIE, R.; HEGELE-HARTUNG, C.; FRITZEMEIER, K. H.; FINK, G. Effects of tamoxifen on serotonin transporter and 5-hydroxytryptamine(2A) receptor binding sites and mRNA levels in the brain of ovariectomized rats with or without acute estradiol replacement. Brain Res Mol Brain Res, 73: 119-128, 1999. SUNDSTROM, E.; KOLARE, S.; SOUVERBIE, F.; SAMUELSNSO, E. B.; PSCHERA, H.; LUNELL, N. O.; Neurochemical differentiation of human bulbospinal monoaminergic neurons during the first trimester. Brain Res Dev Brain Res. 75:1–12, 1993. 83 TANAKA, J.; USHIGOME, A.; HORI, K.; NOMURA, M. Responses of raphe nucleus projecting subfornical organ neurons to angiotensin II in rats. Brain Research Bulletin, 45: 315-318, 1998. TEREK, M. C.; KANIT, L.; DOĞAN, Y. H.; GÖZEN, O.; ZEYBEK, B. KESER, A. OZSENER, S.; POGUN, S. Efects of hormone replacement and tamoxifen on depression in ovariectomized rats. Ginekol Pol, 83:522-526, 2012. TIGERSTEDT, R. & BERGMAN, P. Niere und kreislauf. Arch. Physiol, 8: 223–271, 1898. TIPPETT, F. E.; PADGETT, G. A.; EYSTER, G.; BLANCHARD, G.; BELL, T. Primary hypertension in a colony of dogs. Hypertension, 9: 49-58, 1987. TORRENTE, M. P.; GELENBERG, A. J.; VRANA, K. E. Boosting serotonin in the brain: is it time to revamp the treatment of depression? J Psychopharmacol, 26:629-635, 2012. TOUFEXIS, D. J.; MYERS, K. M.; DAVIS, M. The effect of gonadal hormones and gender on anxiety and emotional learning. Horm Behav, 50:539–549, 2006. TRILLAT, A. C.; MALAGIÉ, I.; MATHE-ALLAINMAT, M.; ANMELLA, M. C.; JACQUOT, C.; LANGLOIS, M.; GARDIER, A. M. Synergistic neurochemical and behavioral effects of fluoxetine and 5-HT1A receptor antagonists. Eur J Pharmacol, 357:179–184. 1998. UMRIUKHIN, A. E.; WIGGER, A.; SINGEWALD, N.; LANDGRAF, R. Hypothalamic and hippocampal release of serotonin in rats bred for hyper- or hypo-anxiety. Stress, 5:299-305, 2002. VARGA, V.; SZEKELY, A. D.; CSILLAG, A.; SHARP, T.; HAJO´ S, M. Evidence for a role of GABA interneurones in the cortical modulation of midbrain 5-hydroxytryptamine neurones. Neuroscience 106:783–792. 2001. VILHENA-FRANCO, T.; MECAWI, A. S.; ELIAS, L. L.; ANTUNES-RODRIGUES, J. Oestradiol potentiates hormone secretion and neuronal activation in response to hypertonic extracellular volume expansion in ovariectomised rats. J Neuroendocrinol, 23: 481-489, 2011. VIJANDE, M.; COSTALES, M.; MARIN, B. Sex difference in polyethylenglycol-induced thirst. Experientia, 34: 742-743, 1978. WADE, G. N. Gonadal hormones and behavioral regulation of body weight. Physiol Behav, 8: 523-534, 1972. WALF, A. A. & FRYE, C. A. Estradiol reduces anxiety- and depression-like behavior of aged female mice. Physiol Behav, 99:169-174, 2010. 84 WALTHER, D. J.; PETER, J. U.; BASHAMMAKH, S.; HORTNAGL, H.; VOITS, M.; FINK, H. Synthesis of serotonin by a second tryptophan hydroxylase isoform. Science, 299:76, 2003. WANG, C. C.; LIN, H. C.; CHAN, Y. H.; GEAN, P.W.; YANG, Y. K.; CHEN, P. S. 5-HT1A-receptor agonist modified amygdala activity and amygdala-associated social behavior in a valproate-induced rat autism model. Int J Neuropsychopharmacol, Jul 3:1-13, 2013. WANG, Q. P.; OCHIAI, H.; NAKAI, Y . GABAergic innervation of serotonergic neurons in the dorsal raphe nucleus of the rat studied by electron microscopy double immunostaining. Brain Res Bull 29: 943–948. 1992. WEISER, M. J. & HANDA, R. J. Estrogen impairs glucocorticoid dependent negative feedback on the hypothalamic–pituitary–adrenal axis via estrogen receptor alpha within the hypothalamus. Neuroscience Volume 159: 883–895, 2009a. WEISER, M. J HANDA, R. J. Estrogen receptor beta (ERbeta) agonist diarylpropionitrile (DPN): biological activities of R- and S-enantiomers on behavior and hormonal response to stress. Endocrinology, 150:1817-1825. 2009b. YOUNG, E. A.; ALTEMUS, M.; PARKINSO, V.; SHASTRY, S. Effects of estrogen antagonists and agonists on the ACTH response to restraint stress in female rats. Neuropsychopharmacology, 25:881-891, 2001. XU, H.; QIN, S.; CARRASCO, G. A.; DAI, Y.; FILARDO, E. J.; PROSSNITZ, E. R.; BATTAGLIA, G.; DONCARLOS, L. L.; MUMA, N. A. Extra-nuclear estrogen receptor GPR30 regulates serotonin function in rat hypothalamus. Neuroscience 158:1599–1607, 2009. YAMAGUCHI, K.; AKAISHI, T.; NEGORO, H.; Effect of estrogen treatment on plasma oxytocin and vasopressin in ovariectomized rats. Endocrinol Jpn, 26:197–205, 1979. ZHANG, Y.; D'SOUZA, D.; RAAP, D. K.; GARCIA, F.; BATTAGLIA, G.; MUMA, N. A.; VAN DE KAR, L. D. Characterization of the functional heterologous desensitization of hypothalamic 5-HT(1A) receptors after 5-HT(2A) receptor activation. J Neurosci, 21:7919-7927. 2001. ZANGROSSI, H. JR.; VIANA, M. B.; ZANOVELI, J.; BUENO, C.; NOGUEIRA, R. L.; GRAEFF, F. G. Serotonergic regulation of inhibitory avoidance and one-way escape in the rat elevated T-maze. Neurosci Biobehav, 25:637-45. 2001. ZIFA, E. & FILLION, G. 5-Hydroxytryptamine receptors. Pharmacol Rev. 144:401-458. 1992. ZOCCALI, C.; ZABLUDOWSKI, J. R.; ISLES, C. G; MURRAY, G. D.; INGLIS, G. C.; ROBERTNSO, J. I.; FRASER, R.; BALL, S. G. The effect of a 5-HT antagonist, ketanserin, on blood pressure, the renin-angiotensin system and sympathoadrenal function in normal man. Br J Clin Pharmacol, 3:305-311, 1983. 85 ZONGAZO, M. A.; CARAYON, A.; MASNSO, F.; ISNARD, R.; EURIN, J.; MAISTRE, G.; BARTHÉLEMY, C.; PROST, A. C.; LEGRAND, J. C. Atrial natriuretic peptide during water deprivation or hemorrhage in rats. Relationship with arginine vasopressin and osmolarity. J Physiol Paris. 86:167-75, 1992.por
dc.subject.cnpqFisiologiapor
dc.thumbnail.urlhttps://tede.ufrrj.br/retrieve/14260/2013%20-%20Fabricia%20Viana%20Fonseca.pdf.jpg*
dc.thumbnail.urlhttps://tede.ufrrj.br/retrieve/15946/2013%20-%20Fabricia%20Viana%20Fonseca.pdf.jpg*
dc.thumbnail.urlhttps://tede.ufrrj.br/retrieve/22256/2013%20-%20Fabricia%20Viana%20Fonseca.pdf.jpg*
dc.thumbnail.urlhttps://tede.ufrrj.br/retrieve/28638/2013%20-%20Fabricia%20Viana%20Fonseca.pdf.jpg*
dc.thumbnail.urlhttps://tede.ufrrj.br/retrieve/35072/2013%20-%20Fabricia%20Viana%20Fonseca.pdf.jpg*
dc.thumbnail.urlhttps://tede.ufrrj.br/retrieve/41526/2013%20-%20Fabricia%20Viana%20Fonseca.pdf.jpg*
dc.thumbnail.urlhttps://tede.ufrrj.br/retrieve/47910/2013%20-%20Fabricia%20Viana%20Fonseca.pdf.jpg*
dc.thumbnail.urlhttps://tede.ufrrj.br/retrieve/54280/2013%20-%20Fabricia%20Viana%20Fonseca.pdf.jpg*
dc.originais.urihttps://tede.ufrrj.br/jspui/handle/jspui/3449
dc.originais.provenanceSubmitted by Sandra Pereira (srpereira@ufrrj.br) on 2020-04-23T00:06:20Z No. of bitstreams: 1 2013 - Fabricia Viana Fonseca.pdf: 974770 bytes, checksum: a404bb20bfff984edbd15dbe26c23160 (MD5)eng
dc.originais.provenanceMade available in DSpace on 2020-04-23T00:06:20Z (GMT). No. of bitstreams: 1 2013 - Fabricia Viana Fonseca.pdf: 974770 bytes, checksum: a404bb20bfff984edbd15dbe26c23160 (MD5) Previous issue date: 2013-10-08eng
Appears in Collections:Doutorado Multicêntrico em Ciências Fisiológicas

Se for cadastrado no RIMA, poderá receber informações por email.
Se ainda não tem uma conta, cadastre-se aqui!

Files in This Item:
File Description SizeFormat 
2013 - Fabricia Viana Fonseca.pdf2013 - Fabricia Viana Fonseca.951.92 kBAdobe PDFThumbnail
View/Open


Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.