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使用纯化的 RAVE 和 V-ATPase 亚基复合物定义 RAVE 催化的 V-ATPase 组装中的步骤。

Defining steps in RAVE-catalyzed V-ATPase assembly using purified RAVE and V-ATPase subcomplexes.

机构信息

Department of Biochemistry and Molecular Biology, SUNY Upstate Medical University, Syracuse, New York, USA.

Department of Biochemistry and Molecular Biology, SUNY Upstate Medical University, Syracuse, New York, USA.

出版信息

J Biol Chem. 2021 Jan-Jun;296:100703. doi: 10.1016/j.jbc.2021.100703. Epub 2021 Apr 22.

Abstract

The vacuolar H-ATPase (V-ATPase) is a highly conserved proton pump responsible for the acidification of intracellular organelles in virtually all eukaryotic cells. V-ATPases are regulated by the rapid and reversible disassembly of the peripheral V domain from the integral membrane V domain, accompanied by release of the V C subunit from both domains. Efficient reassembly of V-ATPases requires the Regulator of the H-ATPase of Vacuoles and Endosomes (RAVE) complex in yeast. Although a number of pairwise interactions between RAVE and V-ATPase subunits have been mapped, the low endogenous levels of the RAVE complex and lethality of constitutive RAV1 overexpression have hindered biochemical characterization of the intact RAVE complex. We describe a novel inducible overexpression system that allows purification of native RAVE and RAVE-V complexes. Both purified RAVE and RAVE-V contain substoichiometric levels of subunit C. RAVE-V binds tightly to expressed subunit C in vitro, but binding of subunit C to RAVE alone is weak. Neither RAVE nor RAVE-V interacts with the N-terminal domain of V subunit Vph1 in vitro. RAVE-V complexes, like isolated V, have no MgATPase activity, suggesting that RAVE cannot reverse V inhibition generated by rotation of subunit H and entrapment of MgADP that occur upon disassembly. However, purified RAVE can accelerate reassembly of V carrying a mutant subunit H incapable of inhibition with V complexes reconstituted into lipid nanodiscs, consistent with its catalytic activity in vivo. These results provide new insights into the possible order of events in V-ATPase reassembly and the roles of the RAVE complex in each event.

摘要

液泡型 H+-ATP 酶(V-ATPase)是一种高度保守的质子泵,负责在几乎所有真核细胞中使细胞内细胞器酸化。V-ATPase 通过外周 V 结构域与完整膜 V 结构域的快速和可逆解组装来调节,同时 V C 亚基从两个结构域中释放。V-ATPase 的有效重组需要酵母中的液泡和内体的 H+-ATP 酶调节剂(RAVE)复合物。尽管已经映射了 RAVE 和 V-ATPase 亚基之间的许多成对相互作用,但 RAVE 复合物的低内源性水平和组成型 RAV1 过表达的致死性阻碍了完整 RAVE 复合物的生化特征。我们描述了一种新的诱导过表达系统,该系统允许纯化天然 RAVE 和 RAVE-V 复合物。纯化的 RAVE 和 RAVE-V 均含有亚基 C 的亚计量水平。RAVE-V 在体外与表达的亚基 C 紧密结合,但亚基 C 与 RAVE 本身的结合较弱。RAVE 或 RAVE-V 均不在体外与 V 亚基 Vph1 的 N 端结构域相互作用。RAVE-V 复合物与分离的 V 一样,没有 MgATP 酶活性,这表明 RAVE 不能逆转由于亚基 H 的旋转和 ADP 的捕获而发生的 V 抑制,这种情况发生在解组装时。然而,纯化的 RAVE 可以加速带有不能被突变的亚基 H 抑制的 V 组装的组装,V 复合物被重新构成脂质纳米盘,这与它在体内的催化活性一致。这些结果为 V-ATPase 重组中可能的事件顺序以及 RAVE 复合物在每个事件中的作用提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/48f3/8138766/f4362b23bc50/gr1.jpg

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