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G蛋白偶联受体对Ras和Rho GTP酶以及丝裂原活化蛋白激酶的激活作用。

Activation of Ras and Rho GTPases and MAP Kinases by G-protein-coupled receptors.

作者信息

Chiariello Mario, Vaqué Jose P, Crespo Piero, Gutkind J Silvio

机构信息

Istituto Toscano Tumori and Consiglio, Nazionale delle Ricerche, Siena, Italy.

出版信息

Methods Mol Biol. 2010;661:137-50. doi: 10.1007/978-1-60761-795-2_8.

Abstract

A complex intracellular signaling network mediates the multiple biological activities of G-protein-coupled receptors (GPCRs). Among them, monomeric GTPases and a family of closely related proline-targeted serine-threonine kinases, collectively known as Mitogen-Activated Protein Kinases (MAPKs), appears to play central roles in orchestrating the proliferative responses to multiple mitogens that act on GPCRs. Upon GDP/GTP exchange, monomeric GTPases control the phosphorylation of conserved threonine and tyrosine residues in MAPKs by their immediate upstream kinases, increasing their enzymatic activity and inducing their translocation to the nucleus where they phosphorylate transcription factors, thereby regulating the expression of genes playing a key role in normal and aberrant cell growth. Recently, a number of GPCRs have been engineered to provide exclusive activation by synthetic drug-like compounds while becoming insensitive to endogenous ligands. These engineered receptors, named Receptors Activated Solely by Synthetic Ligands (RASSLs), promise better understanding of GPCRs signaling in vitro and in vivo, thus representing ideal tools to selectively modulate MAPK signaling routes controlling a wide range of biological functions, from proliferation to differentiation, migration, invasion, and cell survival or death by apoptosis.

摘要

一个复杂的细胞内信号网络介导了G蛋白偶联受体(GPCRs)的多种生物学活性。其中,单体GTP酶和一类紧密相关的脯氨酸靶向丝氨酸 - 苏氨酸激酶,统称为丝裂原活化蛋白激酶(MAPKs),似乎在协调对作用于GPCRs的多种有丝分裂原的增殖反应中发挥核心作用。在GDP / GTP交换后,单体GTP酶通过其紧邻的上游激酶控制MAPKs中保守的苏氨酸和酪氨酸残基的磷酸化,增加其酶活性并诱导其转运至细胞核,在细胞核中它们使转录因子磷酸化,从而调节在正常和异常细胞生长中起关键作用的基因的表达。最近,一些GPCRs经过工程改造,以提供由合成药物样化合物的独家激活,同时对内源性配体不敏感。这些经过工程改造的受体,称为仅由合成配体激活的受体(RASSLs),有望更好地理解体外和体内的GPCRs信号传导,因此代表了选择性调节MAPK信号通路的理想工具,该信号通路控制从增殖到分化、迁移、侵袭以及细胞通过凋亡存活或死亡等广泛的生物学功能。

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