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Rac/Rho-GDI复合物激活NADPH氧化酶的机制。

Mechanism of NADPH oxidase activation by the Rac/Rho-GDI complex.

作者信息

Di-Poï N, Fauré J, Grizot S, Molnár G, Pick E, Dagher M C

机构信息

Laboratoire de Biochimie et Biophysique des Systèmes Intégrés (BBSI)-UMR CEA/CNRS/UJF 5092, CEA Grenoble, 17 Rue des Martyrs, 38054 Grenoble Cedex 9, France.

出版信息

Biochemistry. 2001 Aug 28;40(34):10014-22. doi: 10.1021/bi010289c.

Abstract

The low molecular weight GTP binding protein Rac is essential to the activation of the NADPH oxidase complex, involved in pathogen killing during phagocytosis. In resting cells, Rac exists as a heterodimeric complex with Rho GDP dissociation inhibitor (Rho-GDI). Two types of interactions exist between Rac and Rho-GDI: a protein-lipid interaction, implicating the polyisoprene of the GTPase, as well as protein-protein interactions. Using the two-hybrid system, we show that nonprenylated Rac1 interacts very weakly with Rho-GDI, pointing to the predominant role of protein-isoprene interaction in complex formation. In the absence of this strong interaction, we demonstrate that three sites of protein-protein interaction, Arg66(Rac)-Leu67(Rac), His103(Rac), and the C-terminal polybasic region Arg183(Rac)-Lys188(Rac), are involved and cooperate in complex formation. When Rac1 mutants are prenylated by expression in insect cells, they all interact with Rho-GDI. Rho-GDI is able to exert an inhibitory effect on the GDP/GTP exchange reaction except in the complex in which Rac1 has a deletion of the polybasic region (Arg183(Rac)-Lys188(Rac)). This complex is, most likely, held together through protein-lipid interaction only. Although able to function as GTPases, the mutants of Rac1 that failed to interact with Rho-GDI also failed to activate the NADPH oxidase in a cell-free assay after loading with GTP. Mutant Leu119(Rac)Gln could both interact with Rho-GDI and activate the NADPH oxidase. The Rac1/Rho-GDI and Rac1(Leu119Gln)/Rho-GDI complexes, in which the GTPases were bound to GDP, were found to activate the oxidase efficiently. These data suggest that Rho-GDI stabilizes Rac in an active conformation, even in the GDP-bound state, and presents it to its effector, the p67phox component of the NADPH oxidase.

摘要

低分子量GTP结合蛋白Rac对于NADPH氧化酶复合物的激活至关重要,该复合物参与吞噬作用期间的病原体杀伤过程。在静息细胞中,Rac以与Rho GDP解离抑制剂(Rho-GDI)形成的异二聚体复合物形式存在。Rac与Rho-GDI之间存在两种相互作用:一种是蛋白质-脂质相互作用,涉及GTP酶的聚异戊二烯,另一种是蛋白质-蛋白质相互作用。利用双杂交系统,我们发现未异戊二烯化的Rac1与Rho-GDI的相互作用非常微弱,这表明蛋白质-异戊二烯相互作用在复合物形成中起主要作用。在没有这种强相互作用的情况下,我们证明蛋白质-蛋白质相互作用的三个位点,即Arg66(Rac)-Leu67(Rac)、His103(Rac)以及C末端多碱性区域Arg183(Rac)-Lys188(Rac),参与并协同复合物的形成。当Rac1突变体通过在昆虫细胞中表达而被异戊二烯化时,它们都能与Rho-GDI相互作用。Rho-GDI能够对GDP/GTP交换反应发挥抑制作用,但在Rac1缺失多碱性区域(Arg183(Rac)-Lys188(Rac))的复合物中除外。这种复合物很可能仅通过蛋白质-脂质相互作用结合在一起。尽管能够作为GTP酶发挥作用,但未能与Rho-GDI相互作用的Rac1突变体在加载GTP后的无细胞测定中也未能激活NADPH氧化酶。突变体Leu119(Rac)Gln既能与Rho-GDI相互作用,又能激活NADPH氧化酶。发现GTP酶与GDP结合的Rac1/Rho-GDI和Rac1(Leu119Gln)/Rho-GDI复合物能够有效地激活氧化酶。这些数据表明,即使在GDP结合状态下,Rho-GDI也能将Rac稳定在活性构象,并将其呈递给其效应物,即NADPH氧化酶的p67phox组分。

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