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RGS9-2 介导多巴胺 D2 受体激动剂诱导的内化的特异性抑制。

RGS9-2 mediates specific inhibition of agonist-induced internalization of D2-dopamine receptors.

机构信息

Department of Biomedical and Pharmacological Sciences, College of Pharmacy, University of Rhode Island, Kingston, Rhode Island 02881, USA.

出版信息

J Neurochem. 2010 Aug;114(3):739-49. doi: 10.1111/j.1471-4159.2010.06805.x. Epub 2010 May 8.

Abstract

Regulator of G protein signaling 9-2 (RGS9-2), a member of the RGS family of GTPase accelerating proteins, is expressed specifically in the striatum, a brain region involved in controlling movement, motivation, mood and addiction. RGS9-2 can be found co-localized with D(2)-class dopamine receptors in medium spiny striatal neurons and altered functioning of both RGS9-2 and D(2)-like dopamine receptors have been implicated in schizophrenia, movement disorders and reward responses. Previously we showed that RGS9-2 can specifically co-localize with D(2)-dopamine receptors (D2R). Here we provide further evidence of the specificity of RGS9-2 for regulating D2R cellular functions: the expression of RGS9-2 inhibits dopamine-mediated cellular internalization of D2R, while the expression of another RGS protein, RGS4, had no effect. In addition, the agonist-mediated internalization of the G protein coupled delta opioid receptor was unaffected by RGS9-2 expression. We utilized mutant constructs of RGS9-2 to show that the RGS9-2 DEP (for Disheveled, EGL-10, Pleckstrin homology) domain and the GTPase accelerating activity of RGS9-2 were necessary for mediating specific inhibition of D2R internalization.

摘要

G 蛋白信号调节蛋白 9-2(RGS9-2)是 GTP 酶加速蛋白 RGS 家族的一员,特异性表达于纹状体,纹状体是控制运动、动机、情绪和成瘾的脑区。RGS9-2 可与中脑多巴胺能神经元中的 D2 类多巴胺受体共定位,并且 RGS9-2 和 D2 样多巴胺受体的功能改变与精神分裂症、运动障碍和奖赏反应有关。先前我们表明 RGS9-2 可以与 D2 多巴胺受体(D2R)特异性共定位。在这里,我们提供了更多的证据表明 RGS9-2 特异性调节 D2R 细胞功能:RGS9-2 的表达抑制多巴胺介导的 D2R 细胞内化,而另一种 RGS 蛋白 RGS4 的表达则没有影响。此外,激动剂介导的 G 蛋白偶联 δ 阿片受体的内化不受 RGS9-2 表达的影响。我们利用 RGS9-2 的突变构建体表明,RGS9-2 的 DEP(用于蓬乱、EGL-10、pleckstrin 同源)结构域和 RGS9-2 的 GTP 酶加速活性对于介导 D2R 内化的特异性抑制是必需的。

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