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本文引用的文献

1
Domain interactions determine the conformational ensemble of the periplasmic chaperone SurA.结构域相互作用决定了周质伴侣蛋白 SurA 的构象平衡。
Protein Sci. 2020 Oct;29(10):2043-2053. doi: 10.1002/pro.3924. Epub 2020 Aug 31.
2
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.
3
Design principles of selective transport through biopolymer barriers.生物聚合物屏障选择传输的设计原则。
Phys Rev E. 2019 Oct;100(4-1):042414. doi: 10.1103/PhysRevE.100.042414.
4
A new antibiotic selectively kills Gram-negative pathogens.一种新型抗生素能有选择性地杀死革兰氏阴性病原体。
Nature. 2019 Dec;576(7787):459-464. doi: 10.1038/s41586-019-1791-1. Epub 2019 Nov 20.
5
Chimeric peptidomimetic antibiotics against Gram-negative bacteria.针对革兰氏阴性菌的嵌合肽模拟抗生素。
Nature. 2019 Dec;576(7787):452-458. doi: 10.1038/s41586-019-1665-6. Epub 2019 Oct 23.
6
A small-molecule inhibitor of BamA impervious to efflux and the outer membrane permeability barrier.一种对 BamA 不易渗透的小分子抑制剂,可克服外膜通透性屏障。
Proc Natl Acad Sci U S A. 2019 Oct 22;116(43):21748-21757. doi: 10.1073/pnas.1912345116. Epub 2019 Oct 7.
7
The big BAM theory: An open and closed case?大 BAM 理论:开放还是封闭的案例?
Biochim Biophys Acta Biomembr. 2020 Jan 1;1862(1):183062. doi: 10.1016/j.bbamem.2019.183062. Epub 2019 Sep 11.
8
The Periplasmic Chaperones Skp and SurA.周质伴侣蛋白Skp和SurA。
Subcell Biochem. 2019;92:169-186. doi: 10.1007/978-3-030-18768-2_6.
9
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.
10
The Role of SurA PPIase Domains in Preventing Aggregation of the Outer-Membrane Proteins tOmpA and OmpT.SurA PPIase 结构域在防止外膜蛋白 tOmpA 和 OmpT 聚集中的作用。
J Mol Biol. 2019 Mar 15;431(6):1267-1283. doi: 10.1016/j.jmb.2019.01.032. Epub 2019 Feb 1.

SurA 是一种具有隐蔽凹槽的伴侣蛋白,可扩展未折叠的外膜蛋白。

SurA is a cryptically grooved chaperone that expands unfolded outer membrane proteins.

机构信息

Thomas C. Jenkins Department of Biophysics, Johns Hopkins University, Baltimore, MD 21218.

Department of Chemistry, Johns Hopkins University, Baltimore, MD 21218.

出版信息

Proc Natl Acad Sci U S A. 2020 Nov 10;117(45):28026-28035. doi: 10.1073/pnas.2008175117. Epub 2020 Oct 22.

DOI:10.1073/pnas.2008175117
PMID:33093201
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7668074/
Abstract

The periplasmic chaperone network ensures the biogenesis of bacterial outer membrane proteins (OMPs) and has recently been identified as a promising target for antibiotics. SurA is the most important member of this network, both due to its genetic interaction with the β-barrel assembly machinery complex as well as its ability to prevent unfolded OMP (uOMP) aggregation. Using only binding energy, the mechanism by which SurA carries out these two functions is not well-understood. Here, we use a combination of photo-crosslinking, mass spectrometry, solution scattering, and molecular modeling techniques to elucidate the key structural features that define how SurA solubilizes uOMPs. Our experimental data support a model in which SurA binds uOMPs in a groove formed between the core and P1 domains. This binding event results in a drastic expansion of the rest of the uOMP, which has many biological implications. Using these experimental data as restraints, we adopted an integrative modeling approach to create a sparse ensemble of models of a SurA•uOMP complex. We validated key structural features of the SurA•uOMP ensemble using independent scattering and chemical crosslinking data. Our data suggest that SurA utilizes three distinct binding modes to interact with uOMPs and that more than one SurA can bind a uOMP at a time. This work demonstrates that SurA operates in a distinct fashion compared to other chaperones in the OMP biogenesis network.

摘要

周质伴侣网络确保了细菌外膜蛋白(OMP)的生物发生,最近已被确定为抗生素的一个有前途的靶点。SurA 是该网络中最重要的成员,这不仅是因为它与β桶组装机制复合物的遗传相互作用,还因为它能够防止未折叠的 OMP(uOMP)聚集。仅使用结合能,SurA 执行这两个功能的机制尚不清楚。在这里,我们使用光交联、质谱、溶液散射和分子建模技术的组合来阐明定义 SurA 如何溶解 uOMP 的关键结构特征。我们的实验数据支持这样一种模型,即 SurA 在核心和 P1 结构域之间形成的凹槽中结合 uOMP。这种结合事件导致 uOMP 的其余部分发生剧烈扩张,这具有许多生物学意义。使用这些实验数据作为约束条件,我们采用了一种综合建模方法来创建 SurA•uOMP 复合物的稀疏模型集合。我们使用独立的散射和化学交联数据验证了 SurA•uOMP 集合的关键结构特征。我们的数据表明,SurA 利用三种不同的结合模式与 uOMP 相互作用,并且一次可以结合多个 SurA 与 uOMP 结合。这项工作表明,SurA 的作用方式与 OMP 生物发生网络中的其他伴侣蛋白明显不同。