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分枝杆菌中蛋白质去泛素化的分子内和分子间调控。

Inter- and intramolecular regulation of protein depupylation in Mycobacterium smegmatis.

机构信息

Department of Life Sciences, Ben-Gurion University of the Negev, Beer-Sheva, Israel.

The National Institute for Biotechnology in the Negev, Ben-Gurion University of the Negev, Beer-Sheva, Israel.

出版信息

FEBS J. 2020 Oct;287(20):4389-4400. doi: 10.1111/febs.15245. Epub 2020 Feb 26.

Abstract

Whereas intracellular proteolysis is essential for proper cellular function, it is a destructive process, which must be tightly regulated. In some bacteria, a Pup-proteasome system tags target proteins for degradation by a bacterial proteasome. Pup, a small modifier protein, is attached to target proteins by PafA, the sole Pup ligase, in a process termed pupylation. In mycobacteria, including Mycobacterium smegmatis and Mycobacterium tuberculosis, Pup undergoes a deamidation step by the enzyme Dop prior to its PafA-mediated attachment to a target. The catalytic mechanism of Pup deamidation is also used by Dop to perform depupylation, namely the removal of Pup from already tagged proteins. Hence, Dop appears to play contradictory roles: On the one hand, deamidation of Pup promotes pupylation, while on the other hand, depupylation reduces tagged protein levels. To avoid futile pupylation-depupylation cycles, Dop activity must be regulated. An intramolecular regulatory mechanism directs Dop to catalyze deamidation more effectively than depupylation. A complementary intermolecular mechanism results in Dop depletion under conditions where protein pupylation and degradation are favorable. In this work, we studied these regulatory mechanisms and identified a flexible loop in Dop, previously termed the Dop-loop, that acts as an intramolecular regulatory element that allosterically controls substrate preference. To investigate regulation at the intermolecular level, we used the CRISPR interference system to knock down the expression of M. smegmatis ATP-dependent intracellular proteases and found that the ClpCP protease is responsible for Dop depletion under starvation conditions. These findings clarify previous observations and introduce a new level for the regulation of Dop activity. DATABASE: Structural data are available in the PDB database under the accession numbers 4BJR and 4B0S.

摘要

尽管细胞内蛋白质水解对于正常的细胞功能至关重要,但它是一种破坏性过程,必须进行严格的调控。在某些细菌中,一种 Pup-蛋白酶体系统通过细菌蛋白酶体将靶蛋白标记为降解。Pup 是一种小的修饰蛋白,通过唯一的 Pup 连接酶 PafA 连接到靶蛋白上,这一过程称为 pupylation。在分枝杆菌中,包括耻垢分枝杆菌和结核分枝杆菌,Pup 在被 PafA 介导连接到靶标之前,先由酶 Dop 经历脱酰胺步骤。Pup 脱酰胺的催化机制也被 Dop 用于 depupylation,即从已经标记的蛋白质中去除 Pup。因此,Dop 似乎扮演着矛盾的角色:一方面,Pup 的脱酰胺促进 pupylation,另一方面,depupylation 降低了标记蛋白的水平。为了避免无效的 pupylation-depupylation 循环,Dop 的活性必须受到调控。一种分子内调控机制指导 Dop 更有效地催化脱酰胺,而不是 depupylation。一种互补的分子间机制导致 Dop 在有利于蛋白质 pupylation 和降解的条件下耗尽。在这项工作中,我们研究了这些调控机制,并鉴定了 Dop 中的一个柔性环,以前称为 Dop 环,它作为一个分子内调节元件,变构控制底物偏好。为了研究分子间的调控,我们使用 CRISPR 干扰系统敲低耻垢分枝杆菌的 ATP 依赖性细胞内蛋白酶的表达,发现 ClpCP 蛋白酶在饥饿条件下负责 Dop 的耗尽。这些发现澄清了以前的观察结果,并为 Dop 活性的调控引入了一个新的层次。数据库:结构数据可在 PDB 数据库中以 4BJR 和 4B0S 的登录号获得。

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