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力测量光学镊子揭示了尿路致病性大肠杆菌表达的 F1C 菌毛的快速解卷曲动力学。

Fast uncoiling kinetics of F1C pili expressed by uropathogenic Escherichia coli are revealed on a single pilus level using force-measuring optical tweezers.

机构信息

Department of Physics, Umeå University, SE-90187 Umeå, Sweden.

出版信息

Eur Biophys J. 2011 Mar;40(3):305-16. doi: 10.1007/s00249-010-0648-1. Epub 2010 Dec 16.

DOI:10.1007/s00249-010-0648-1
PMID:21161524
Abstract

Uropathogenic Escherichia coli (UPEC) express various kinds of organelles, so-called pili or fimbriae, that mediate adhesion to host tissue in the urinary tract through specific receptor-adhesin interactions. The biomechanical properties of these pili have been considered important for the ability of bacteria to withstand shear forces from rinsing urine flows. Force-measuring optical tweezers have been used to characterize individual organelles of F1C type expressed by UPEC bacteria with respect to such properties. Qualitatively, the force-versus-elongation response was found to be similar to that of other types of helix-like pili expressed by UPEC, i.e., type 1, P, and S, with force-induced elongation in three regions, one of which represents the important uncoiling mechanism of the helix-like quaternary structure. Quantitatively, the steady-state uncoiling force was assessed as 26.4 ±1.4 pN, which is similar to those of other pili (which range from 21 pN for S(I) to 30 pN for type 1). The corner velocity for dynamic response (1,400 nm/s) was found to be larger than those of the other pili (400-700 nm/s for S and P pili, and 6 nm/s for type 1). The kinetics were found to be faster, with a thermal opening rate of 17 Hz, a few times higher than S and P pili, and three orders of magnitude higher than type 1. These data suggest that F1C pili are, like P and S pili, evolutionarily selected to primarily withstand the conditions expressed in the upper urinary tract.

摘要

尿路致病性大肠杆菌(UPEC)表达各种细胞器,即所谓的菌毛或纤毛,通过特定的受体-黏附素相互作用介导对泌尿道宿主组织的黏附。这些菌毛的生物力学特性被认为对于细菌抵抗冲洗尿液流产生的剪切力的能力很重要。力测量光学镊子已被用于根据这些特性来表征由 UPEC 细菌表达的 F1C 型的单个细胞器。定性地,力与伸长率的响应被发现与 UPEC 表达的其他类型的螺旋菌毛相似,即类型 1、P 和 S,在三个区域中存在力诱导的伸长,其中一个区域代表螺旋状四级结构的重要解旋机制。定量地,评估稳态解旋力为 26.4 ±1.4 pN,这与其他菌毛相似(范围从 S(I)的 21 pN 到类型 1 的 30 pN)。动态响应的角速度(1,400 nm/s)被发现大于其他菌毛(S 和 P 菌毛的 400-700 nm/s,以及类型 1 的 6 nm/s)。动力学被发现更快,热开口率为 17 Hz,比 S 和 P 菌毛高几倍,比类型 1 高三个数量级。这些数据表明,F1C 菌毛与 P 和 S 菌毛一样,是进化选择来主要耐受上尿路中表达的条件。

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2
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FEBS J. 2010 Aug;277(16):3368-81. doi: 10.1111/j.1742-4658.2010.07742.x. Epub 2010 Jul 14.
3
Force-dependent polymorphism in type IV pili reveals hidden epitopes.
Biophys J. 2022 Jun 7;121(11):2096-2106. doi: 10.1016/j.bpj.2022.04.036. Epub 2022 Apr 30.
4
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Microorganisms. 2018 May 4;6(2):39. doi: 10.3390/microorganisms6020039.
6
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Eur Biophys J. 2017 Apr;46(3):225-233. doi: 10.1007/s00249-016-1158-6. Epub 2016 Jul 26.
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8
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10
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