Audibert Astrid, Boisbouvier Jerome, Vermot Annelise
Univ. Grenoble Alpes, CNRS, CEA, Institut de Biologie Structurale (IBS), 71, Avenue des Martyrs, F-38044 Grenoble, France.
Biomolecules. 2025 Jul 29;15(8):1097. doi: 10.3390/biom15081097.
AAA+ ATPases are ring-shaped hexameric protein complexes that operate as elaborate macromolecular motors, driving a variety of ATP-dependent cellular processes. AAA+ ATPases undergo large-scale conformational changes that lead to the conversion of chemical energy from ATP into mechanical work to perform a wide range of functions, such as unfolding and translocation of the protein substrate inside a proteolysis chamber of an AAA+-associated protease. Despite extensive biochemical studies on these macromolecular assemblies, the mechanism of substrate unfolding and degradation has long remained elusive. Indeed, until recently, structural characterization of AAA+ protease complexes remained hampered by the size and complexity of the machinery, harboring multiple protein subunits acting together to process proteins to be degraded. Additionally, the major structural rearrangements involved in the mechanism of this complex represent a crucial challenge for structural biology. Here, we report the main advances in deciphering molecular details of the proteolytic reaction performed by AAA+ proteases, based on the remarkable progress in structural biology techniques. Particular emphasis is placed on the latest findings from high-resolution structural analysis of the ClpXP proteolytic complex, using crystallographic and cryo-EM investigations. In addition, this review presents some additional dynamic information obtained using solution-state NMR. This information provides molecular details that help to explain the protein degradation process by such molecular machines.
AAA+ ATP酶是环状六聚体蛋白质复合物,作为精密的大分子马达发挥作用,驱动各种依赖ATP的细胞过程。AAA+ ATP酶会经历大规模的构象变化,从而将ATP中的化学能转化为机械能,以执行广泛的功能,比如在与AAA+相关蛋白酶的蛋白水解腔室内使蛋白质底物展开和转运。尽管对这些大分子组装体进行了广泛的生化研究,但底物展开和降解的机制长期以来一直难以捉摸。事实上,直到最近,AAA+蛋白酶复合物的结构表征仍因该机制的规模和复杂性而受阻,该机制包含多个共同作用以处理待降解蛋白质的蛋白质亚基。此外,该复合物机制中涉及的主要结构重排对结构生物学来说是一个关键挑战。在此,基于结构生物学技术的显著进展,我们报告了在破译AAA+蛋白酶进行的蛋白水解反应分子细节方面取得的主要进展。特别强调了使用晶体学和冷冻电镜研究对ClpXP蛋白水解复合物进行高分辨率结构分析的最新发现。此外,本综述还介绍了使用溶液态核磁共振获得的一些额外的动态信息。这些信息提供了有助于解释此类分子机器蛋白质降解过程的分子细节。