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AAA+ 马达蛋白 ClpA、ClpB 和 Hsp104 的结构与功能比较分析:共同特点与不同功能

Comparative Analysis of the Structure and Function of AAA+ Motors ClpA, ClpB, and Hsp104: Common Threads and Disparate Functions.

作者信息

Duran Elizabeth C, Weaver Clarissa L, Lucius Aaron L

机构信息

Department of Chemistry, University of Alabama at BirminghamBirmingham, AL, United States.

出版信息

Front Mol Biosci. 2017 Aug 3;4:54. doi: 10.3389/fmolb.2017.00054. eCollection 2017.

Abstract

Cellular proteostasis involves not only the expression of proteins in response to environmental needs, but also the timely repair or removal of damaged or unneeded proteins. AAA+ motor proteins are critically involved in these pathways. Here, we review the structure and function of AAA+ proteins ClpA, ClpB, and Hsp104. ClpB and Hsp104 rescue damaged proteins from toxic aggregates and do not partner with any protease. ClpA functions as the regulatory component of the ATP dependent protease complex ClpAP, and also remodels inactive RepA dimers into active monomers in the absence of the protease. Because ClpA functions both with and without a proteolytic component, it is an ideal system for developing strategies that address one of the major challenges in the study of protein remodeling machines: how do we observe a reaction in which the substrate protein does not undergo covalent modification? Here, we review experimental designs developed for the examination of polypeptide translocation catalyzed by the AAA+ motors in the absence of proteolytic degradation. We propose that transient state kinetic methods are essential for the examination of elementary kinetic mechanisms of these motor proteins. Furthermore, rigorous kinetic analysis must also account for the thermodynamic properties of these complicated systems that reside in a dynamic equilibrium of oligomeric states, including the biologically active hexamer.

摘要

细胞蛋白质稳态不仅涉及根据环境需求表达蛋白质,还涉及及时修复或清除受损或不需要的蛋白质。AAA+马达蛋白在这些途径中起着关键作用。在这里,我们综述了AAA+蛋白ClpA、ClpB和Hsp104的结构和功能。ClpB和Hsp104能从有毒聚集体中拯救受损蛋白质,且不与任何蛋白酶合作。ClpA作为ATP依赖性蛋白酶复合物ClpAP的调节成分,在没有蛋白酶的情况下,还能将无活性的RepA二聚体重塑为活性单体。由于ClpA在有和没有蛋白水解成分的情况下都能发挥作用,它是开发应对蛋白质重塑机器研究中主要挑战之一的策略的理想系统:我们如何观察底物蛋白不发生共价修饰的反应?在这里,我们综述了为在没有蛋白水解降解的情况下检测由AAA+马达催化的多肽转位而开发的实验设计。我们提出,瞬态动力学方法对于研究这些马达蛋白的基本动力学机制至关重要。此外,严格的动力学分析还必须考虑这些复杂系统的热力学性质,这些系统处于包括生物活性六聚体在内的寡聚状态的动态平衡中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bcfc/5540906/a98254cf46fe/fmolb-04-00054-g0001.jpg

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