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蓝藻、质体和顶质体中 Clp AAA+ 蛋白酶系统的结构、功能和底物:比较分析。

Structure, function, and substrates of Clp AAA+ protease systems in cyanobacteria, plastids, and apicoplasts: A comparative analysis.

机构信息

Section of Plant Biology, School of Integrative Plant Sciences (SIPS), Cornell University, Ithaca, New York, USA.

Section of Plant Biology, School of Integrative Plant Sciences (SIPS), Cornell University, Ithaca, New York, USA.

出版信息

J Biol Chem. 2021 Jan-Jun;296:100338. doi: 10.1016/j.jbc.2021.100338. Epub 2021 Jan 23.

Abstract

ATPases Associated with diverse cellular Activities (AAA+) are a superfamily of proteins that typically assemble into hexameric rings. These proteins contain AAA+ domains with two canonical motifs (Walker A and B) that bind and hydrolyze ATP, allowing them to perform a wide variety of different functions. For example, AAA+ proteins play a prominent role in cellular proteostasis by controlling biogenesis, folding, trafficking, and degradation of proteins present within the cell. Several central proteolytic systems (e.g., Clp, Deg, FtsH, Lon, 26S proteasome) use AAA+ domains or AAA+ proteins to unfold protein substrates (using energy from ATP hydrolysis) to make them accessible for degradation. This allows AAA+ protease systems to degrade aggregates and large proteins, as well as smaller proteins, and feed them as linearized molecules into a protease chamber. This review provides an up-to-date and a comparative overview of the essential Clp AAA+ protease systems in Cyanobacteria (e.g., Synechocystis spp), plastids of photosynthetic eukaryotes (e.g., Arabidopsis, Chlamydomonas), and apicoplasts in the nonphotosynthetic apicomplexan pathogen Plasmodium falciparum. Recent progress and breakthroughs in identifying Clp protease structures, substrates, substrate adaptors (e.g., NblA/B, ClpS, ClpF), and degrons are highlighted. We comment on the physiological importance of Clp activity, including plastid biogenesis, proteostasis, the chloroplast Protein Unfolding Response, and metabolism, across these diverse lineages. Outstanding questions as well as research opportunities and priorities to better understand the essential role of Clp systems in cellular proteostasis are discussed.

摘要

ATP 酶相关的各种细胞活动 (AAA+) 是一个蛋白超家族,通常组装成六聚体环。这些蛋白包含 AAA+ 结构域,具有两个典型基序(Walker A 和 B),可以结合并水解 ATP,使它们能够执行各种不同的功能。例如,AAA+ 蛋白通过控制细胞内蛋白质的生物发生、折叠、运输和降解,在细胞的蛋白质稳态中发挥重要作用。几种中心蛋白酶系统(如 Clp、Deg、FtsH、Lon、26S 蛋白酶体)使用 AAA+ 结构域或 AAA+ 蛋白来展开蛋白质底物(利用 ATP 水解产生的能量),使其易于降解。这使得 AAA+ 蛋白酶系统能够降解聚集体和大蛋白,以及较小的蛋白,并将它们线性化后送入蛋白酶腔中进行降解。本综述提供了一个最新的和比较性的综述,介绍了蓝藻(如 Synechocystis spp)、光合真核生物的质体(如 Arabidopsis、Chlamydomonas)和非光合 Apicomplexan 病原体 Plasmodium falciparum 中的必需 Clp AAA+ 蛋白酶系统。重点介绍了在鉴定 Clp 蛋白酶结构、底物、底物衔接蛋白(如 NblA/B、ClpS、ClpF)和降解基序方面的最新进展和突破。我们评论了 Clp 活性在这些不同谱系中的生理重要性,包括质体生物发生、蛋白质稳态、叶绿体蛋白展开反应和代谢。讨论了关于 Clp 系统在细胞蛋白质稳态中的重要作用的未解决问题以及研究机会和重点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2dd9/7966870/9551bf56d5ed/gr1.jpg

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