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OMP peptide signals initiate the envelope-stress response by activating DegS protease via relief of inhibition mediated by its PDZ domain.OMP肽信号通过解除由其PDZ结构域介导的抑制作用来激活DegS蛋白酶,从而启动包膜应激反应。
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OMP peptides activate the DegS stress-sensor protease by a relief of inhibition mechanism.OMP 肽通过解除抑制机制激活 DegS 应激传感器蛋白酶。
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Suppressor Mutations in Overcome the Acute Temperature-Sensitive Phenotype of Δ and Δ Δ Mutants of Escherichia coli.抑制突变克服了大肠杆菌 Δ 和 Δ Δ 突变体的急性温度敏感表型。
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The crystal structure of Mycobacterium tuberculosis high-temperature requirement A protein reveals an autoregulatory mechanism.结核分枝杆菌高温需求A蛋白的晶体结构揭示了一种自我调节机制。
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Processing of X-ray diffraction data collected in oscillation mode.振荡模式下收集的X射线衍射数据的处理。
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Crystal structure of RseB and a model of its binding mode to RseA.RseB的晶体结构及其与RseA结合模式的模型。
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Inhibition of regulated proteolysis by RseB.RseB对调节性蛋白水解的抑制作用。
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Design principles of the proteolytic cascade governing the sigmaE-mediated envelope stress response in Escherichia coli: keys to graded, buffered, and rapid signal transduction.大肠杆菌中控制σE介导的包膜应激反应的蛋白水解级联反应的设计原则:分级、缓冲和快速信号转导的关键
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Conserved and variable functions of the sigmaE stress response in related genomes.相关基因组中σE应激反应的保守和可变功能。
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Sick chaperones, cellular stress, and disease.异常伴侣蛋白、细胞应激与疾病
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Envelope stress responses and Gram-negative bacterial pathogenesis.包膜应激反应与革兰氏阴性菌致病机制
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Versatile modes of peptide recognition by the AAA+ adaptor protein SspB.AAA+衔接蛋白SspB识别肽段的多种模式
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Proteolysis as a regulatory mechanism.蛋白水解作为一种调节机制。
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DegS对σE应激反应的调控:PDZ结构域如何在静息状态下使蛋白酶保持无活性,并在折叠应激时允许整合不同的外膜蛋白衍生应激信号。

Regulation of the sigmaE stress response by DegS: how the PDZ domain keeps the protease inactive in the resting state and allows integration of different OMP-derived stress signals upon folding stress.

作者信息

Hasselblatt Hanna, Kurzbauer Robert, Wilken Corinna, Krojer Tobias, Sawa Justyna, Kurt Juliane, Kirk Rebecca, Hasenbein Sonja, Ehrmann Michael, Clausen Tim

机构信息

Research Institute of Molecular Pathology-IMP, A-1030 Vienna, Austria.

出版信息

Genes Dev. 2007 Oct 15;21(20):2659-70. doi: 10.1101/gad.445307.

DOI:10.1101/gad.445307
PMID:17938245
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2000328/
Abstract

The unfolded protein response of Escherichia coli is triggered by the accumulation of unassembled outer membrane proteins (OMPs) in the cellular envelope. The PDZ-protease DegS recognizes these mislocalized OMPs and initiates a proteolytic cascade that ultimately leads to the sigmaE-driven expression of a variety of factors dealing with folding stress in the periplasm and OMP assembly. The general features of how OMPs activate the protease function of DegS have not yet been systematically addressed. Furthermore, it is unknown how the PDZ domain keeps the protease inactive in the resting state, which is of crucial importance for the functioning of the entire sigmaE stress response. Here we show in atomic detail how DegS is able to integrate the information of distinct stress signals that originate from different OMPs containing a -x-Phe C-terminal motif. A dedicated loop of the protease domain, loop L3, serves as a versatile sensor for allosteric ligands. L3 is capable of interacting differently with ligands but reorients in a conserved manner to activate DegS. Our data also indicate that the PDZ domain directly inhibits protease function in the absence of stress signals by wedging loop L3 in a conformation that ultimately disrupts the proteolytic site. Thus, the PDZ domain and loop L3 of DegS define a novel molecular switch allowing strict regulation of the sigmaE stress response system.

摘要

大肠杆菌的未折叠蛋白反应由细胞包膜中未组装的外膜蛋白(OMP)积累引发。PDZ蛋白酶DegS识别这些错误定位的OMP,并启动蛋白水解级联反应,最终导致由sigmaE驱动表达多种应对周质折叠应激和OMP组装的因子。OMP如何激活DegS的蛋白酶功能的一般特征尚未得到系统研究。此外,尚不清楚PDZ结构域如何在静止状态下使蛋白酶保持无活性,这对整个sigmaE应激反应的功能至关重要。在此,我们以原子细节展示了DegS如何整合来自不同含有-x-Phe C末端基序的OMP的不同应激信号信息。蛋白酶结构域的一个特定环,即环L3,作为变构配体的通用传感器。L3能够以不同方式与配体相互作用,但以保守方式重新定向以激活DegS。我们的数据还表明,在没有应激信号的情况下,PDZ结构域通过将环L3楔入最终破坏蛋白水解位点的构象来直接抑制蛋白酶功能。因此,DegS的PDZ结构域和环L3定义了一种新型分子开关,允许对sigmaE应激反应系统进行严格调控。