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Clp 蛋白降解机制的结构见解。

Structural insights into the Clp protein degradation machinery.

机构信息

Department of Neurosurgery, Zhongnan Hospital of Wuhan University, School of Pharmaceutical Sciences, Wuhan University, Wuhan, China.

Ministry of Education Key Laboratory of Combinatorial Biosynthesis and Drug Discovery, School of Pharmaceutical Sciences, Wuhan University, Wuhan, China.

出版信息

mBio. 2024 Apr 10;15(4):e0003124. doi: 10.1128/mbio.00031-24. Epub 2024 Mar 19.

Abstract

The Clp protease system is important for maintaining proteostasis in bacteria. It consists of ClpP serine proteases and an AAA+ Clp-ATPase such as ClpC1. The hexameric ATPase ClpC1 utilizes the energy of ATP binding and hydrolysis to engage, unfold, and translocate substrates into the proteolytic chamber of homo- or hetero-tetradecameric ClpP for degradation. The assembly between the hetero-tetradecameric ClpP1P2 chamber and the Clp-ATPases containing tandem ATPase domains from the same species has not been studied in depth. Here, we present cryo-EM structures of the substrate-bound ClpC1:shClpP1P2 from , and shClpP1P2 in complex with ADEP1, a natural compound produced by and known to cause over-activation and dysregulation of the ClpP proteolytic core chamber. Our structures provide detailed information on the shClpP1-shClpP2, shClpP2-ClpC1, and ADEP1-shClpP1/P2 interactions, reveal conformational transition of ClpC1 during the substrate translocation, and capture a rotational ATP hydrolysis mechanism likely dominated by the D1 ATPase activity of chaperones.IMPORTANCEThe Clp-dependent proteolysis plays an important role in bacterial homeostasis and pathogenesis. The ClpP protease system is an effective drug target for antibacterial therapy. can produce a class of potent acyldepsipeptide antibiotics such as ADEP1, which could affect the ClpP protease activity. Although hosts one of the most intricate ClpP systems in nature, very little was known about its Clp protease mechanism and the impact of ADEP molecules on ClpP. The significance of our research is in dissecting the functional mechanism of the assembled Clp degradation machinery, as well as the interaction between ADEP1 and the ClpP proteolytic chamber, by solving high-resolution structures of the substrate-bound Clp system in . The findings shed light on our understanding of the Clp-dependent proteolysis in bacteria, which will enhance the development of antimicrobial drugs targeting the Clp protease system, and help fighting against bacterial multidrug resistance.

摘要

Clp 蛋白酶系统对于维持细菌的蛋白质平衡至关重要。它由 ClpP 丝氨酸蛋白酶和 Clp-ATP 酶(如 ClpC1)组成。六聚体 ATP 酶 ClpC1 利用 ATP 结合和水解的能量,与同种或异种十四聚体 ClpP 结合、展开和转运底物进入蛋白水解腔进行降解。同种物种的串联 ATP 酶结构域的 Clp-ATP 酶与异十四聚体 ClpP1P2 腔之间的组装尚未得到深入研究。在这里,我们展示了来自 的结合底物的 ClpC1:shClpP1P2 和与 ADEP1 复合物的冷冻电镜结构,ADP1 是一种由 产生的天然化合物,已知会导致 ClpP 蛋白水解核心腔过度激活和失调。我们的结构提供了 shClpP1-shClpP2、shClpP2-ClpC1 和 ADEP1-shClpP1/P2 相互作用的详细信息,揭示了 ClpC1 在底物转运过程中的构象转变,并捕获了可能由伴侣的 D1 ATP 酶活性主导的旋转 ATP 水解机制。

重要性:Clp 依赖性蛋白水解在细菌的动态平衡和发病机制中起着重要作用。ClpP 蛋白酶系统是一种有效的抗菌治疗药物靶点。可以产生一类有效的酰基辅酶 A 二肽抗生素,如 ADEP1,可能会影响 ClpP 蛋白酶的活性。尽管 拥有自然界中最复杂的 ClpP 系统之一,但对其 Clp 蛋白酶机制以及 ADEP 分子对 ClpP 的影响知之甚少。我们研究的意义在于通过解决 的结合底物的 Clp 降解机制的功能机制以及 ADEP1 与 ClpP 蛋白水解腔之间的相互作用,揭示细菌中 Clp 依赖性蛋白水解的机制,这将有助于开发针对 Clp 蛋白酶系统的抗菌药物,并有助于对抗细菌的多药耐药性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b553/11005422/585053521ffd/mbio.00031-24.f001.jpg

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