细菌粘附素
化学
聚糖
木桩
大肠杆菌
凝集素
甘露糖
配体(生物化学)
C型凝集素
甘露聚糖结合凝集素
糖蛋白
伞
菌毛
微生物学
生物化学
受体
生物
基因
作者
Maximilian M. Sauer,R.P. Jakob,Thomas Luber,Fabia Canonica,Giulio Navarra,Beat Ernst,Carlo Unverzagt,Timm Maier,Rudi Glockshuber
摘要
Multivalent carbohydrate–lectin interactions at host–pathogen interfaces play a crucial role in the establishment of infections. Although competitive antagonists that prevent pathogen adhesion are promising antimicrobial drugs, the molecular mechanisms underlying these complex adhesion processes are still poorly understood. Here, we characterize the interactions between the fimbrial adhesin FimH from uropathogenic Escherichia coli strains and its natural high-mannose type N-glycan binding epitopes on uroepithelial glycoproteins. Crystal structures and a detailed kinetic characterization of ligand-binding and dissociation revealed that the binding pocket of FimH evolved such that it recognizes the terminal α(1–2)-, α(1–3)-, and α(1–6)-linked mannosides of natural high-mannose type N-glycans with similar affinity. We demonstrate that the 2000-fold higher affinity of the domain-separated state of FimH compared to its domain-associated state is ligand-independent and consistent with a thermodynamic cycle in which ligand-binding shifts the association equilibrium between the FimH lectin and the FimH pilin domain. Moreover, we show that a single N-glycan can bind up to three molecules of FimH, albeit with negative cooperativity, so that a molar excess of accessible N-glycans over FimH on the cell surface favors monovalent FimH binding. Our data provide pivotal insights into the adhesion properties of uropathogenic Escherichia coli strains to their target receptors and a solid basis for the development of effective FimH antagonists.
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