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RGS 蛋白通过选择性刺激 G 蛋白亚基 Gαo 来维持 GPCR-GIRK 偶联的稳健性。

RGS proteins maintain robustness of GPCR-GIRK coupling by selective stimulation of the G protein subunit Gαo.

机构信息

Department of Biomedical Sciences, Cornell University, Ithaca, NY 14853, USA.

出版信息

Sci Signal. 2012 Feb 21;5(212):ra15. doi: 10.1126/scisignal.2002202.

Abstract

Termination of heterotrimeric guanine nucleotide-binding protein (G protein) signaling downstream of activated G protein-coupled receptors (GPCRs) is accelerated by regulator of G protein signaling (RGS) proteins, which act as guanosine triphosphatase (GTPase)-activating proteins (GAPs). Using a Xenopus oocyte expression system, we found that although RGS proteins had a negative effect of accelerating the kinetics of GPCR-coupled potassium ion (K+) channel (GIRK) deactivation, they also had positive effects of increasing the amplitudes and activation kinetics of neurotransmitter-evoked GIRK currents. The RGS box domain alone was sufficient to stimulate neurotransmitter-dependent activation of GIRK currents. Moreover, RGS4 mutants with compromised GAP activity augmented GPCR-GIRK coupling (as assessed by measurement of the GIRK current elicited by neurotransmitter). By accelerating G protein activation kinetics, RGS4 specifically stimulated Gα₀, which stimulated GPCR-GIRK coupling despite its GAP activity. Opposing actions of RGS proteins thus both stimulate and inhibit G proteins to modulate the amplitude and kinetics of neurotransmitter-induced GIRK currents, thereby distinguishing the responses to activation of different G protein isoforms.

摘要

已激活的鸟苷三磷酸结合蛋白偶联受体(GPCR)下游的三聚体鸟苷酸结合蛋白(G 蛋白)信号的终止是由 G 蛋白信号调节蛋白(RGS)加速的,其作为鸟苷三磷酸酶(GTPase)-激活蛋白(GAP)起作用。我们使用非洲爪蟾卵母细胞表达系统发现,尽管 RGS 蛋白具有加速 GPCR 偶联钾离子(K+)通道(GIRK)失活动力学的负效应,但它们也具有增加神经递质诱导的 GIRK 电流幅度和激活动力学的正效应。RGS 盒结构域本身足以刺激神经递质依赖性 GIRK 电流的激活。此外,具有 GAP 活性受损的 RGS4 突变体增强了 GPCR-GIRK 偶联(通过测量神经递质引起的 GIRK 电流来评估)。通过加速 G 蛋白激活动力学,RGS4 特异性地刺激 Gα₀,尽管其 GAP 活性,但其刺激 GPCR-GIRK 偶联。因此,RGS 蛋白的相反作用既刺激又抑制 G 蛋白,以调节神经递质诱导的 GIRK 电流的幅度和动力学,从而区分不同 G 蛋白同工型激活的反应。

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