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本文引用的文献

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Inter-membrane association of the Sec and BAM translocons for bacterial outer-membrane biogenesis.Sec 和 BAM 易位子之间的膜间关联对于细菌外膜生物发生的作用。
Elife. 2020 Nov 4;9:e60669. doi: 10.7554/eLife.60669.
2
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Proc Natl Acad Sci U S A. 2020 Nov 10;117(45):28026-28035. doi: 10.1073/pnas.2008175117. Epub 2020 Oct 22.
3
Inter-domain dynamics in the chaperone SurA and multi-site binding to its outer membrane protein clients.伴侣蛋白 SurA 的域间动力学及其与外膜蛋白客户的多站点结合
Nat Commun. 2020 May 1;11(1):2155. doi: 10.1038/s41467-020-15702-1.
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The big BAM theory: An open and closed case?大 BAM 理论:开放还是封闭的案例?
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Plasticity and transient binding are key ingredients of the periplasmic chaperone network.可塑性和瞬时结合是周质伴侣蛋白网络的关键组成部分。
Protein Sci. 2019 Jul;28(7):1340-1349. doi: 10.1002/pro.3641. Epub 2019 May 23.
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Commonly used FRET fluorophores promote collapse of an otherwise disordered protein.常用的 FRET 荧光团会促使原本无序的蛋白质发生崩溃。
Proc Natl Acad Sci U S A. 2019 Apr 30;116(18):8889-8894. doi: 10.1073/pnas.1813038116. Epub 2019 Apr 16.
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The outer membrane is an essential load-bearing element in Gram-negative bacteria.外膜是革兰氏阴性菌的重要承重元件。
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结构域相互作用决定了周质伴侣蛋白 SurA 的构象平衡。

Domain interactions determine the conformational ensemble of the periplasmic chaperone SurA.

机构信息

Thomas C. Jenkins Department of Biophysics, Johns Hopkins University, Baltimore, Maryland, USA.

Department of Cell Biology, Harvard Medical School, Boston, Massachusetts, USA.

出版信息

Protein Sci. 2020 Oct;29(10):2043-2053. doi: 10.1002/pro.3924. Epub 2020 Aug 31.

DOI:10.1002/pro.3924
PMID:32748422
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7513704/
Abstract

SurA is thought to be the most important periplasmic chaperone for outer membrane protein (OMP) biogenesis. Its structure is composed of a core region and two peptidylprolyl isomerase domains, termed P1 and P2, connected by flexible linkers. As such these three independent folding units are able to adopt a number of distinct spatial positions with respect to each other. The conformational dynamics of these domains are thought to be functionally important yet are largely unresolved. Here we address this question of the conformational ensemble using sedimentation equilibrium, small-angle neutron scattering, and folding titrations. This combination of orthogonal methods converges on a SurA population that is monomeric at physiological concentrations. The conformation that dominates this population has the P1 and core domains docked to one another, for example, "P1-closed" and the P2 domain extended in solution. We discovered that the distribution of domain orientations is defined by modest and favorable interactions between the core domain and either the P1 or the P2 domains. These two peptidylprolyl domains compete with each other for core-binding but are thermodynamically uncoupled. This arrangement implies two novel insights. Firstly, an open conformation must exist to facilitate P1 and P2 exchange on the core, indicating that the open client-binding conformation is populated at low levels even in the absence of client unfolded OMPs. Secondly, competition between P1 and P2 binding paradoxically occludes the client binding site on the core, which may serve to preserve the reservoir of binding-competent apo-SurA in the periplasm.

摘要

SurA 被认为是外膜蛋白(OMP)生物发生过程中最重要的周质伴侣。它的结构由一个核心区域和两个肽基脯氨酰顺反异构酶结构域(称为 P1 和 P2)组成,通过柔性接头连接。因此,这三个独立的折叠单元能够相对于彼此采取许多不同的空间位置。这些结构域的构象动力学被认为具有功能重要性,但在很大程度上尚未解决。在这里,我们使用沉降平衡、小角中子散射和折叠滴定来解决这些结构域的构象问题。这些正交方法的组合得出了一个结论,即在生理浓度下,SurA 是单体。主导这个群体的构象是 P1 和核心结构域相互对接,例如“P1 关闭”,而 P2 结构域在溶液中伸展。我们发现,结构域取向的分布由核心结构域与 P1 或 P2 结构域之间适度且有利的相互作用定义。这两个肽基脯氨酰结构域相互竞争核心结合,但热力学上不耦合。这种排列意味着有两个新的见解。首先,必须存在开放构象才能促进核心上的 P1 和 P2 交换,这表明即使在没有未折叠 OMP 的情况下,开放的客户结合构象也以低水平存在。其次,P1 和 P2 结合的竞争荒谬地阻塞了核心上的客户结合位点,这可能有助于在周质中保留结合能力的 apo-SurA 储备库。