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GPSM3对RGS5 GAP活性的调节

Regulation of RGS5 GAP activity by GPSM3.

作者信息

Zhao Peishen, Chidiac Peter

机构信息

Monash Institute of Pharmaceutical Sciences, Monash University, 381 Royal Parade, Parkville, VIC, 3052, Australia.

出版信息

Mol Cell Biochem. 2015 Jul;405(1-2):33-40. doi: 10.1007/s11010-015-2393-3. Epub 2015 Apr 5.

Abstract

Heterotrimeric G protein signaling is limited by intracellular proteins that impede the binding of or accelerate the hydrolysis of the activating nucleotide GTP, exemplified respectively by the G protein-signaling modifier (GPSM) and regulator of G protein-signaling (RGS) families of proteins. Little is known about how members of these groups of proteins might influence the impact of the other on G protein activity. In the present study, we have identified novel binding and functional interactions between GPSM3 (also known as activator of G protein-signaling 4 (AGS4) or G18) and RGS5, both of which were found to be expressed in primary rat aortic smooth muscle cell cultures. The binding of GPSM3 to RGS5 appears to be selective as no interactions were detected with other RGS proteins tested. In solution-based experiments, the addition of GPSM3 was found to enhance the ability of RGS5 to accelerate GTP hydrolysis by Gαi1 but not that of RGS4. In membrane-based assays utilizing M2 muscarinic receptor-activated Gαi1, GPSM3 decreased the rate of GTP hydrolysis in the presence of RGS4 but not RGS5, suggesting that the enhancement of RGS5 activity by GPSM3 is maintained under these conditions and/or that the binding of RGS5 to GPSM3 impedes its inhibitory effect on GTP turnover. Overall these findings show that it is possible for GPSM and RGS proteins to bind to one another to produce distinct regulatory effects on heterotrimeric G protein activity.

摘要

异源三聚体G蛋白信号传导受到细胞内蛋白质的限制,这些蛋白质会阻碍激活核苷酸GTP的结合或加速其水解,分别以G蛋白信号修饰因子(GPSM)和G蛋白信号调节剂(RGS)蛋白家族为例。对于这些蛋白质组的成员如何影响彼此对G蛋白活性的影响,人们了解甚少。在本研究中,我们鉴定了GPSM3(也称为G蛋白信号激活因子4(AGS4)或G18)与RGS5之间新的结合和功能相互作用,二者均在原代大鼠主动脉平滑肌细胞培养物中表达。GPSM3与RGS5的结合似乎具有选择性,因为未检测到与测试的其他RGS蛋白有相互作用。在基于溶液的实验中,发现添加GPSM3可增强RGS5加速Gαi1水解GTP的能力,但不能增强RGS4的这种能力。在利用M2毒蕈碱受体激活的Gαi1进行的基于膜的测定中,GPSM3在存在RGS4时降低了GTP水解速率,但在存在RGS5时未降低,这表明在这些条件下GPSM3对RGS5活性的增强得以维持,和/或RGS5与GPSM3的结合阻碍了其对GTP周转的抑制作用。总体而言,这些发现表明GPSM和RGS蛋白有可能相互结合,从而对异源三聚体G蛋白活性产生不同的调节作用。

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