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封闭状态下 Grp94(Hsp90 家族伴侣蛋白)的构象循环。

Conformational Cycling within the Closed State of Grp94, an Hsp90-Family Chaperone.

机构信息

Department of Biochemistry, Brandeis University, Waltham, MA 02454, USA.

Department of Biochemistry, Brandeis University, Waltham, MA 02454, USA.

出版信息

J Mol Biol. 2019 Aug 9;431(17):3312-3323. doi: 10.1016/j.jmb.2019.06.004. Epub 2019 Jun 14.

Abstract

The Hsp90 family of chaperones requires ATP-driven cycling to perform their function. The presence of two bound ATP molecules is known to favor a closed conformation of the Hsp90 dimer. However, the structural and mechanistic consequences of subsequent ATP hydrolysis are poorly understood. Using single-molecule FRET, we discover novel dynamic behavior in the closed state of Grp94, the Hsp90 family member resident in the endoplasmic reticulum. Under ATP turnover conditions, Grp94 populates two distinct closed states, a relatively static ATP/ATP closed state that adopts one conformation, and a dynamic ATP/ADP closed state that can adopt two conformations. We constructed a Grp94 heterodimer with one arm that is catalytically dead, to extend the lifetime of the ATP/ADP state by preventing hydrolysis of the second ATP. This construct shows prolonged periods of cycling between two closed conformations. Our results enable a quantitative description of how ATP hydrolysis influences Grp94, where sequential ATP hydrolysis steps allow Grp94 to transition between closed states with different dynamic and structural properties. This stepwise transitioning of Grp94's dynamic properties may provide a mechanism to propagate structural changes to a bound client protein.

摘要

Hsp90 伴侣蛋白家族需要 ATP 驱动的循环来发挥其功能。已知两个结合的 ATP 分子有利于 Hsp90 二聚体的闭合构象。然而,随后的 ATP 水解的结构和机制后果理解得很差。使用单分子 FRET,我们在驻留在内质网中的 Hsp90 家族成员 Grp94 的封闭状态下发现了新的动态行为。在 ATP 转换条件下,Grp94 呈现出两种不同的封闭状态,一种是相对静态的 ATP/ATP 封闭状态,采用一种构象,另一种是动态的 ATP/ADP 封闭状态,可以采用两种构象。我们构建了一个具有一条臂的 Grp94 异二聚体,该臂是催化失活的,通过防止第二个 ATP 的水解来延长 ATP/ADP 状态的寿命。这种构建体显示出在两种封闭构象之间周期性地循环的延长时间。我们的结果使如何水解 ATP 影响 Grp94 的定量描述成为可能,其中连续的 ATP 水解步骤允许 Grp94 在具有不同动态和结构特性的封闭状态之间转换。Grp94 动态特性的这种逐步转变可能为将结构变化传播到结合的客户端蛋白提供了一种机制。

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