Vasopressin induces dopamine release and cyclic AMP efflux from the brain of water-deprived rats: inhibitory effect of vasopressin V2 receptor-mediated phosphorylation.

M G Tyagi, R K Handa, P M Stephen, J S Bapna
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引用次数: 11

Abstract

The neurohypophyseal hormone vasopressin (AVP) is widely distributed throughout the central nervous system. It acts as an excitatory transmitter in the CNS and plays an important physiological role in water and electrolyte homeostasis. However, water deprivation has been shown to induce changes in the levels of monoamines, but there is little knowledge about the influence of AVP on monoamine levels after water deprivation. In this study, we investigated the effect of AVP and its receptor antagonists on alterations in dopamine (DA) release and cyclic adenosine 3',5' monophosphate (cAMP) efflux from rat brain slices following water deprivation. Striatal brain slices (500 microm thick) were incubated in a medium with or without AVP (0. 1-1.0 microM) for 30 min. After 2 h of washout in normal medium, high KCl (40 mM)-evoked DA release and cAMP efflux from the rat brain slices were examined. In the brain slices of euhydrated animals, treatment with AVP slightly altered DA release and cAMP efflux from the brain. This increase in DA release and cAMP efflux was not significantly affected by the addition of a calcium/calmodulin-dependent protein phosphatase, calcineurin (20 microM), to the incubation medium or either by a V1 or V2 AVP receptor antagonist. In contrast, AVP significantly increased the DA release and enhanced the cAMP efflux from the brain slices of water-deprived animals. The AVP-induced increase of brain response in the water-deprived animals was significantly attenuated by a V2 receptor antagonist, partially by calcineurin, but not by a V1 receptor antagonist. The present results suggest that AVP may play a role in water-deprivation-induced DA release and cAMP efflux, which is possibly mediated through the activation of the V2 receptor. The V2 receptor action is attenuated by calcium/calmodulin-dependent dephosphorlyation of some cellular proteins critical for signal transduction.

抗利尿激素诱导缺水大鼠大脑多巴胺释放和AMP循环外排:抗利尿激素V2受体介导磷酸化的抑制作用
神经垂体激素抗利尿激素(AVP)广泛分布于整个中枢神经系统。它在中枢神经系统中作为兴奋性递质,在水和电解质稳态中起着重要的生理作用。然而,已经证明缺水会引起单胺水平的变化,但关于AVP对缺水后单胺水平的影响知之甚少。在这项研究中,我们研究了AVP及其受体拮抗剂对水剥夺后大鼠脑片多巴胺(DA)释放和环腺苷3′,5′单磷酸腺苷(cAMP)外排的影响。纹状体脑切片(500微米厚)在含或不含AVP的培养基中孵育。在正常培养液中冲洗2小时后,检测高KCl (40 mM)诱发的DA释放和cAMP外排。在脱水动物的脑切片中,AVP处理略微改变了DA的释放和cAMP的脑外排。在培养培养基中添加钙/钙调素依赖性蛋白磷酸酶钙调磷酸酶(20微米)或V1或V2 AVP受体拮抗剂,对DA释放和cAMP外排的增加没有显著影响。相反,AVP显著增加了失水动物脑片DA的释放和cAMP的外排。avp诱导的缺水动物脑反应的增加被V2受体拮抗剂(部分由钙调磷酸酶)显著减弱,而V1受体拮抗剂则没有。本研究结果提示,AVP可能在缺水诱导的DA释放和cAMP外排中发挥作用,这可能通过激活V2受体介导。V2受体的作用被一些对信号转导至关重要的细胞蛋白的钙/钙调素依赖性去磷酸化所减弱。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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