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The mycobacterial proteasomal ATPase Mpa forms a gapped ring to engage the 20S proteasome

机译:分枝杆菌蛋白酶体ATP酶MPa形成一条带有喷口环以接合20S蛋白酶体

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摘要

Although many bacterial species do not possess proteasome systems, the actinobacteria, including the human pathogen Mycobacterium tuberculosis, use proteasome systems for targeted protein removal. Previous structural analyses of the mycobacterial proteasome ATPase Mpa revealed a general structural conservation with the archaeal proteasome-activating nucleotidase and eukaryotic proteasomal Rpt1–6 ATPases, such as the N-terminal coiled-coil domain, oligosaccharide-/oligonucleotide-binding domain, and ATPase domain. However, Mpa has a unique β-grasp domain that in the ADP-bound crystal structure appears to interfere with the docking to the 20S proteasome core particle (CP). Thus, it is unclear how Mpa binds to proteasome CPs. In this report, we show by cryo-EM that the Mpa hexamer in the presence of a degradation substrate and ATP forms a gapped ring, with two of its six ATPase domains being highly flexible. We found that the linkers between the oligonucleotide-binding and ATPase domains undergo conformational changes that are important for function, revealing a previously unappreciated role of the linker region in ATP hydrolysis–driven protein unfolding. We propose that this gapped ring configuration is an intermediate state that helps rearrange its β-grasp domains and activating C termini to facilitate engagement with proteasome CPs. This work provides new insights into the crucial process of how an ATPase interacts with a bacterial proteasome protease.
机译:虽然许多细菌种类不具有蛋白酶体系,但包括人病原体结核分枝杆菌,使用蛋白酶体系统去除靶蛋白质。先前的分枝杆菌蛋白酶体ATP酶MPa的结构分析揭示了具有古蛋白酶体激活的核苷酸酶和真核蛋白酶体RPT1-6 ATP酶的一般结构守恒,例如N-末端卷曲螺旋域,寡糖/寡核苷酸结合结构域和ATP酶领域。然而,MPa具有独特的β-掌握结构域,其在ADP边缘晶体结构中似乎干扰到20S蛋白酶体核颗粒(CP)的对接。因此,目前尚不清楚MPA如何与蛋白酶体CP结合。在本报告中,我们通过Cryo-EM展示了降解底物和ATP存在的MPA六氧聚醚,其具有间隙环,其中六个ATP酶结构域具有高度柔韧的。我们发现寡核苷酸结合和ATP酶结构域之间的接头经历了对功能重要的构象变化,揭示了ATP水解驱动蛋白展开中的接头区域的先前未被覆富的作用。我们提出这种间隙环形配置是一种中间状态,有助于重新排列其β-抓握结构域并激活C Termini以促进与蛋白酶组CP的接合。这项工作为ATP酶如何与细菌蛋白酶体蛋白酶相互作用的关键过程提供了新的见解。

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