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ATP 非依赖的底物招募到分枝杆菌的蛋白酶体降解途径中。

ATP-independent substrate recruitment to proteasomal degradation in mycobacteria.

机构信息

ETH Zurich, Institute of Molecular Biology and Biophysics, Zurich, Switzerland.

ETH Zurich, Institute of Molecular Systems Biology, Zurich Switzerland.

出版信息

Life Sci Alliance. 2023 Aug 10;6(10). doi: 10.26508/lsa.202301923. Print 2023 Oct.

Abstract

Mycobacteria and other actinobacteria possess proteasomal degradation pathways in addition to the common bacterial compartmentalizing protease systems. Proteasomal degradation plays a crucial role in the survival of these bacteria in adverse environments. The mycobacterial proteasome interacts with several ring-shaped activators, including the bacterial proteasome activator (Bpa), which enables energy-independent degradation of heat shock repressor HspR. However, the mechanism of substrate selection and processing by the Bpa-proteasome complex remains unclear. In this study, we present evidence that disorder in substrates is required but not sufficient for recruitment to Bpa-mediated proteasomal degradation. We demonstrate that Bpa binds to the folded N-terminal helix-turn-helix domain of HspR, whereas the unstructured C-terminal tail of the substrate acts as a sequence-specific threading handle to promote efficient proteasomal degradation. In addition, we establish that the heat shock chaperone DnaK, which interacts with and co-regulates HspR, stabilizes HspR against Bpa-mediated proteasomal degradation. By phenotypical characterization of parent and deletion mutant strains, we show that Bpa-dependent proteasomal degradation supports the survival of the bacterium under stress conditions by degrading HspR that regulates vital chaperones.

摘要

分枝杆菌和其他放线菌除了具有常见的细菌分隔蛋白酶系统外,还具有蛋白酶体降解途径。蛋白酶体降解在这些细菌在不利环境中的生存中起着至关重要的作用。分枝杆菌蛋白酶体与几种环形激活剂相互作用,包括细菌蛋白酶体激活剂 (Bpa),它能够在没有能量的情况下降解热休克阻遏物 HspR。然而,Bpa-蛋白酶体复合物的底物选择和加工机制尚不清楚。在这项研究中,我们提供了证据表明,底物的无序性是招募到 Bpa 介导的蛋白酶体降解所必需的,但不是充分的。我们证明 Bpa 结合到 HspR 的折叠 N 端螺旋-转角-螺旋结构域,而底物的无规卷曲 C 端尾巴作为序列特异性穿线手柄,促进高效的蛋白酶体降解。此外,我们确定与 HspR 相互作用并共同调节 HspR 的热休克伴侣蛋白 DnaK 稳定 HspR 免受 Bpa 介导的蛋白酶体降解。通过对亲本和缺失突变菌株的表型特征分析,我们表明 Bpa 依赖性蛋白酶体降解通过降解调节重要伴侣蛋白的 HspR 来支持细菌在应激条件下的生存。

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