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细菌黏附复合物的机械稳定化

Mechanical Stabilization of a Bacterial Adhesion Complex.

机构信息

Department of Physics, National University of Singapore, Singapore 117542.

Mechanobiology Institute, National University of Singapore, Singapore 117411.

出版信息

J Am Chem Soc. 2022 Sep 21;144(37):16808-16818. doi: 10.1021/jacs.2c03961. Epub 2022 Sep 7.

Abstract

The adhesions between Gram-positive bacteria and their hosts are exposed to varying magnitudes of tensile forces. Here, using an ultrastable magnetic tweezer-based single-molecule approach, we show the catch-bond kinetics of the prototypical adhesion complex of SD-repeat protein G (SdrG) to a peptide from fibrinogen β (Fgβ) over a physiologically important force range from piconewton (pN) to tens of pN, which was not technologically accessible to previous studies. At 37 °C, the lifetime of the complex exponentially increases from seconds at several pN to ∼1000 s as the force reaches 30 pN, leading to mechanical stabilization of the adhesion. The dissociation transition pathway is determined as the unbinding of a critical β-strand peptide ("latch" strand of SdrG that secures the entire adhesion complex) away from its binding cleft, leading to the dissociation of the Fgβ ligand. Similar mechanical stabilization behavior is also observed in several homologous adhesions, suggesting the generality of catch-bond kinetics in such bacterial adhesions. We reason that such mechanical stabilization confers multiple advantages in the pathogenesis and adaptation of bacteria.

摘要

革兰氏阳性菌与其宿主之间的黏附物会受到不同大小的张力作用。在这里,我们使用超稳定的基于磁镊的单分子方法,在生理相关的力范围内(从皮牛顿到数十皮牛顿)研究了原型黏附复合物 SD-重复蛋白 G (SdrG)与纤维蛋白原β (Fgβ)肽之间的捕获键动力学,这是之前的研究技术无法达到的。在 37°C 下,当力达到 30 pN 时,复合物的寿命从几皮牛顿的几秒钟呈指数级增长到约 1000 s,从而使黏附稳定化。解离转变途径是通过关键的β-折叠肽(“闩锁”链)离开其结合缝隙从 SdrG 中解离开来,从而导致 Fgβ 配体的解离。在几个同源黏附中也观察到类似的机械稳定化行为,表明这种捕获键动力学在这类细菌黏附中具有普遍性。我们推断,这种机械稳定化在细菌的发病机制和适应中赋予了多种优势。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e182/9501914/49b45e5629d2/ja2c03961_0002.jpg

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