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外膜蛋白A(OmpA)控制外膜的秩序并分担机械负荷。

OmpA controls order in the outer membrane and shares the mechanical load.

作者信息

Benn Georgina, Borrelli Carolina, Prakaash Dheeraj, Johnson Alex N T, Fideli Vincent A, Starr Tahj, Fitzmaurice Dylan, Combs Ashton N, Wühr Martin, Rojas Enrique R, Khalid Syma, Hoogenboom Bart W, Silhavy Thomas J

机构信息

Department of Molecular Biology, Princeton University, Princeton, NJ 08540.

London Centre for Nanotechnology, University College London, London WC1H 0AH, United Kingdom.

出版信息

Proc Natl Acad Sci U S A. 2024 Dec 10;121(50):e2416426121. doi: 10.1073/pnas.2416426121. Epub 2024 Dec 4.

Abstract

OmpA, a predominant outer membrane (OM) protein in , affects virulence, adhesion, and bacterial OM integrity. However, despite more than 50 y of research, the molecular basis for the role of OmpA has remained elusive. In this study, we demonstrate that OmpA organizes the OM protein lattice and mechanically connects it to the cell wall (CW). Using gene fusions, atomic force microscopy, simulations, and microfluidics, we show that the β-barrel domain of OmpA is critical for maintaining the permeability barrier, but both the β-barrel and CW-binding domains are necessary to enhance the cell envelope's strength. OmpA integrates the compressive properties of the OM protein lattice with the tensile strength of the CW, forming a mechanically robust composite that increases overall integrity. This coupling likely underpins the ability of the entire envelope to function as a cohesive, resilient structure, critical for the survival of bacteria.

摘要

外膜蛋白A(OmpA)是[细菌名称]中一种主要的外膜(OM)蛋白,它影响毒力、黏附以及细菌外膜的完整性。然而,尽管经过了50多年的研究,OmpA发挥作用的分子基础仍然难以捉摸。在本研究中,我们证明OmpA能够组织外膜蛋白晶格,并将其与细胞壁(CW)机械连接。通过基因融合、原子力显微镜、模拟和微流控技术,我们表明OmpA的β-桶状结构域对于维持通透性屏障至关重要,但β-桶状结构域和细胞壁结合结构域对于增强细胞包膜的强度都是必需的。OmpA将外膜蛋白晶格的压缩特性与细胞壁的拉伸强度整合在一起,形成了一种机械上坚固的复合物,从而提高了整体完整性。这种耦合可能是整个包膜能够作为一个凝聚性、弹性结构发挥功能的基础,这对细菌的生存至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/60c7/11648852/bf13aca01fcf/pnas.2416426121fig01.jpg

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