FimH Forms Catch Bonds That Are Enhanced by Mechanical Force Due to Allosteric Regulation

变构调节 细菌粘附素 粘附 化学 生物物理学 力谱学 大肠杆菌 分子 生物化学 生物 有机化学 基因
作者
Olga Yakovenko,Shivani Sharma,Manu Forero-Shelton,Veronika Tchesnokova,Pavel Aprikian,Brian Kidd,Albert J. Mach,Viola Vogel,Evgeni V. Sokurenko,Wendy E. Thomas
出处
期刊:Journal of Biological Chemistry [Elsevier BV]
卷期号:283 (17): 11596-11605 被引量:215
标识
DOI:10.1074/jbc.m707815200
摘要

The bacterial adhesive protein, FimH, is the most common adhesin of Escherichia coli and mediates weak adhesion at low flow but strong adhesion at high flow. There is evidence that this occurs because FimH forms catch bonds, defined as bonds that are strengthened by tensile mechanical force. Here, we applied force to single isolated FimH bonds with an atomic force microscope in order to test this directly. If force was loaded slowly, most of the bonds broke up at low force (<60 piconewtons of rupture force). However, when force was loaded rapidly, all bonds survived until much higher force (140-180 piconewtons of rupture force), behavior that indicates a catch bond. Structural mutations or pretreatment with a monoclonal antibody, both of which allosterically stabilize a high affinity conformation of FimH, cause all bonds to survive until high forces regardless of the rate at which force is applied. Pretreatment of FimH bonds with intermediate force has the same strengthening effect on the bonds. This demonstrates that FimH forms catch bonds and that tensile force induces an allosteric switch to the high affinity, strong binding conformation of the adhesin. The catch bond behavior of FimH, the amount of force needed to regulate FimH, and the allosteric mechanism all provide insight into how bacteria bind and form biofilms in fluid flow. Additionally, these observations may provide a means for designing antiadhesive mechanisms.
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