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葡萄球菌生物膜蛋白Aap通过机械上不同的同种亲和及凝集素相互作用介导细胞间黏附。

The staphylococcal biofilm protein Aap mediates cell-cell adhesion through mechanically distinct homophilic and lectin interactions.

作者信息

Wang Can, Chantraine Constance, Viljoen Albertus, Herr Andrew B, Fey Paul D, Horswill Alexander R, Mathelié-Guinlet Marion, Dufrêne Yves F

机构信息

Louvain Institute of Biomolecular Science and Technology, UCLouvain, Croix du Sud, 4-5, bte L7.07.07, B-1348 Louvain-la-Neuve, Belgium.

Divisions of Immunobiology and Infectious Diseases, Cincinnati Children's Hospital Medical Center, Cincinnati, OH 45229, USA.

出版信息

PNAS Nexus. 2022 Dec 2;1(5):pgac278. doi: 10.1093/pnasnexus/pgac278. eCollection 2022 Nov.

Abstract

The accumulation phase of staphylococcal biofilms relies on both the production of an extracellular polysaccharide matrix and the expression of bacterial surface proteins. A prototypical example of such adhesive proteins is the long multidomain protein Aap (accumulation-associated protein) from , which mediates zinc-dependent homophilic interactions between Aap B-repeat regions through molecular forces that have not been investigated yet. Here, we unravel the remarkable mechanical strength of single Aap-Aap homophilic bonds between living bacteria and we demonstrate that intercellular adhesion also involves sugar binding through the lectin domain of the Aap A region. We find that the mechanical force needed to unfold individual β-sheet-rich G5-E domains from the Aap B-repeat regions is very high, ranging from 300 up to 1,000 pN at high loading rates, indicating these are extremely stable. This high mechanostability provides a means to the cells to form highly adhesive and cohesive biofilms capable of sustaining high physiological shear stress. Importantly, we identify a previously undescribed role of Aap in bacterial-bacterial adhesion, that is, heterophilic sugar binding by a specific lectin domain located in the N-terminal A region, which might be important to establish initial contacts between cells before strong homophilic bonds come into play. This study emphasizes the remarkable mechanical and binding properties of Aap as well as its wide diversity of adhesive functions.

摘要

葡萄球菌生物膜的积累阶段既依赖于细胞外多糖基质的产生,也依赖于细菌表面蛋白的表达。这类粘附蛋白的一个典型例子是来自[具体来源未提及]的长多结构域蛋白Aap(积累相关蛋白),它通过尚未研究的分子力介导Aap B重复区域之间的锌依赖性嗜同种相互作用。在这里,我们揭示了活细菌之间单个Aap - Aap嗜同种键的显著机械强度,并证明细胞间粘附还涉及通过Aap A区域的凝集素结构域进行糖结合。我们发现,从Aap B重复区域展开富含β - 折叠的单个G5 - E结构域所需的机械力非常高,在高加载速率下范围从300到1000 pN,这表明这些结构极其稳定。这种高机械稳定性为细胞提供了一种形成能够承受高生理剪切应力的高度粘附和凝聚生物膜的方式。重要的是,我们确定了Aap在细菌 - 细菌粘附中一个以前未描述的作用,即位于N端A区域内的特定凝集素结构域的异嗜性糖结合,这在强嗜同种键发挥作用之前建立细胞间的初始接触可能很重要。这项研究强调了Aap卓越的机械和结合特性以及其广泛多样的粘附功能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/30d6/9802226/8e5c347b6bea/pgac278fig1.jpg

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