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从“分子机器”视角对粘性细菌细胞表面附属物进行结构剖析。

Architectural dissection of adhesive bacterial cell surface appendages from a "molecular machines" viewpoint.

作者信息

Smith Olivia E R, Bharat Tanmay A M

机构信息

Structural Studies Division, MRC Laboratory of Molecular Biology, Cambridge, United Kingdom.

出版信息

J Bacteriol. 2024 Dec 19;206(12):e0029024. doi: 10.1128/jb.00290-24. Epub 2024 Nov 5.

DOI:10.1128/jb.00290-24
PMID:39499080
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7616799/
Abstract

The ability of bacteria to interact with and respond to their environment is crucial to their lifestyle and survival. Bacterial cells routinely need to engage with extracellular target molecules, in locations spatially separated from their cell surface. Engagement with distant targets allows bacteria to adhere to abiotic surfaces and host cells, sense harmful or friendly molecules in their vicinity, as well as establish symbiotic interactions with neighboring cells in multicellular communities such as biofilms. Binding to extracellular molecules also facilitates transmission of information back to the originating cell, allowing the cell to respond appropriately to external stimuli, which is critical throughout the bacterial life cycle. This requirement of bacteria to bind to spatially separated targets is fulfilled by a myriad of specialized cell surface molecules, which often have an extended, filamentous arrangement. In this review, we compare and contrast such molecules from diverse bacteria, which fulfil a range of binding functions critical for the cell. Our comparison shows that even though these extended molecules have vastly different sequence, biochemical and functional characteristics, they share common architectural principles that underpin bacterial adhesion in a variety of contexts. In this light, we can consider different bacterial adhesins under one umbrella, specifically from the point of view of a modular molecular machine, with each part fulfilling a distinct architectural role. Such a treatise provides an opportunity to discover fundamental molecular principles governing surface sensing, bacterial adhesion, and biofilm formation.

摘要

细菌与周围环境相互作用并做出反应的能力对其生存方式和存活至关重要。细菌细胞通常需要与细胞外靶分子相互作用,这些靶分子位于与其细胞表面在空间上分离的位置。与远处靶标的相互作用使细菌能够附着在非生物表面和宿主细胞上,感知其附近的有害或有益分子,并在多细胞群落(如生物膜)中与相邻细胞建立共生相互作用。与细胞外分子的结合还促进了信息向原始细胞的传递,使细胞能够对外部刺激做出适当反应,这在整个细菌生命周期中都至关重要。细菌与空间上分离的靶标结合的这一需求是通过大量特殊的细胞表面分子来实现的,这些分子通常具有延伸的丝状排列。在这篇综述中,我们比较和对比了来自不同细菌的此类分子,它们履行着一系列对细胞至关重要的结合功能。我们的比较表明,尽管这些延伸分子具有截然不同的序列、生化和功能特征,但它们共享共同的结构原则,这些原则在各种情况下支撑着细菌的粘附。据此,我们可以将不同的细菌粘附素归为一类,特别是从模块化分子机器的角度来看,其中每个部分都履行着独特的结构作用。这样一篇论文提供了一个机会,来发现支配表面感知、细菌粘附和生物膜形成的基本分子原理。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e71b/11656742/95d366b22309/jb.00290-24.f002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e71b/11656742/c91a787e402a/jb.00290-24.f001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e71b/11656742/95d366b22309/jb.00290-24.f002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e71b/11656742/c91a787e402a/jb.00290-24.f001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e71b/11656742/95d366b22309/jb.00290-24.f002.jpg

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