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线粒体热休克蛋白90类似物Trap1的ATP酶循环

The ATPase cycle of the mitochondrial Hsp90 analog Trap1.

作者信息

Leskovar Adriane, Wegele Harald, Werbeck Nicolas D, Buchner Johannes, Reinstein Jochen

机构信息

Department of Biomolecular Mechanisms, Max-Planck-Institute for Medical Research, Jahnstrasse 29, Heidelberg 69120, Germany.

出版信息

J Biol Chem. 2008 Apr 25;283(17):11677-88. doi: 10.1074/jbc.M709516200. Epub 2008 Feb 20.

Abstract

Hsp90 is an ATP-dependent molecular chaperone whose mechanism is not yet understood in detail. Here, we present the first ATPase cycle for the mitochondrial member of the Hsp90 family called Trap1 (tumor necrosis factor receptor-associated protein 1). Using biochemical, thermodynamic, and rapid kinetic methods we dissected the kinetics of the nucleotide-regulated rearrangements between the open and the closed conformations. Surprisingly, upon ATP binding, Trap1 shifts predominantly to the closed conformation (70%), but, unlike cytosolic Hsp90 from yeast, this process is rather slow at 0.076 s(-1). Because reopening (0.034 s(-1)) is about ten times faster than hydrolysis (k(hyd) = 0.0039 s(-1)), which is the rate-limiting step, Trap1 is not able to commit ATP to hydrolysis. The proposed ATPase cycle was further scrutinized by a global fitting procedure that utilizes all relevant experimental data simultaneously. This analysis corroborates our model of a two-step binding mechanism of ATP followed by irreversible ATP hydrolysis and a one-step product (ADP) release.

摘要

热休克蛋白90(Hsp90)是一种依赖ATP的分子伴侣,其作用机制尚未完全明确。在此,我们展示了热休克蛋白90家族线粒体成员Trap1(肿瘤坏死因子受体相关蛋白1)的首个ATP酶循环。我们运用生化、热力学和快速动力学方法,剖析了核苷酸调节的开放构象与闭合构象之间重排的动力学过程。令人惊讶的是,在结合ATP后,Trap1主要转变为闭合构象(70%),但与酵母胞质Hsp90不同的是,这一过程相当缓慢,速率为0.076 s⁻¹。由于重新开放(0.034 s⁻¹)比水解(k(hyd)=0.0039 s⁻¹)快约十倍,而水解是限速步骤,所以Trap1无法使ATP进行水解。通过全局拟合程序进一步仔细研究了所提出的ATP酶循环,该程序同时利用了所有相关实验数据。这一分析证实了我们提出的ATP两步结合机制模型,随后是不可逆的ATP水解以及一步产物(ADP)释放。

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