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信号转导的分子开关:原癌基因ras蛋白活性形式与非活性形式之间的结构差异

Molecular switch for signal transduction: structural differences between active and inactive forms of protooncogenic ras proteins.

作者信息

Milburn M V, Tong L, deVos A M, Brünger A, Yamaizumi Z, Nishimura S, Kim S H

机构信息

Department of Chemistry, University of California, Berkeley.

出版信息

Science. 1990 Feb 23;247(4945):939-45. doi: 10.1126/science.2406906.

Abstract

Ras proteins participate as a molecular switch in the early steps of the signal transduction pathway that is associated with cell growth and differentiation. When the protein is in its GTP complexed form it is active in signal transduction, whereas it is inactive in its GDP complexed form. A comparison of eight three-dimensional structures of ras proteins in four different crystal lattices, five with a nonhydrolyzable GTP analog and three with GDP, reveals that the "on" and "off" states of the switch are distinguished by conformational differences that span a length of more than 40 A, and are induced by the gamma-phosphate. The most significant differences are localized in two regions: residues 30 to 38 (the switch I region) in the second loop and residues 60 to 76 (the switch II region) consisting of the fourth loop and the short alpha-helix that follows the loop. Both regions are highly exposed and form a continuous strip on the molecular surface most likely to be the recognition sites for the effector and receptor molecule(or molecules). The conformational differences also provide a structural basis for understanding the biological and biochemical changes of the proteins due to oncogenic mutations, autophosphorylation, and GTP hydrolysis, and for understanding the interactions with other proteins.

摘要

Ras蛋白作为分子开关参与与细胞生长和分化相关的信号转导途径的早期步骤。当该蛋白处于与GTP复合的形式时,它在信号转导中是活跃的,而处于与GDP复合的形式时则是无活性的。对四种不同晶格中ras蛋白的八个三维结构进行比较,其中五个与不可水解的GTP类似物结合,三个与GDP结合,结果表明,开关的“开”和“关”状态由跨越超过40埃长度的构象差异区分,并且由γ-磷酸诱导。最显著的差异位于两个区域:第二个环中的30至38位残基(开关I区域)和由第四个环及该环之后的短α-螺旋组成的60至76位残基(开关II区域)。这两个区域都高度暴露,在分子表面形成一条连续带,很可能是效应器和受体分子(或多个分子)的识别位点。构象差异也为理解由于致癌突变、自磷酸化和GTP水解导致的蛋白质的生物学和生化变化,以及理解与其他蛋白质的相互作用提供了结构基础。

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