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Quality control of disulfide bond formation in pilus subunits by the chaperone FimC

机译:伴侣FimC对菌毛亚基中二硫键形成的质量控制

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摘要

Type 1 pili from uropathogenic Escherichia coli are filamentous, noncovalent protein complexes mediating bacterial adhesion to the host tissue. All structural pilus subunits are homologous proteins sharing an invariant disulfide bridge. Here we show that disulfide bond formation in the unfolded subunits, catalyzed by the periplasmic oxidoreductase DsbA, is required for subunit recognition by the assembly chaperone FimC and for FimC-catalyzed subunit folding. FimC thus guarantees quantitative disulfide bond formation in each of the up to 3,000 subunits of the pilus. The X-ray structure of the complex between FimC and the main pilus subunit FimA and the kinetics of FimC-catalyzed FimA folding indicate that FimC accelerates folding of pilus subunits by lowering their topological complexity. The kinetic data, together with the measured in vivo concentrations of DsbA and FimC, predict an in vivo half-life of 2 s for oxidative folding of FimA in the periplasm.
机译:来自泌尿致病性大肠杆菌的1型菌毛是介导细菌粘附于宿主组织的丝状非共价蛋白复合物。所有结构菌毛亚基都是共享不变的二硫键的同源蛋白。在这里,我们显示了由周质氧化还原酶DsbA催化的未折叠亚基中的二硫键形成,对于组装分子伴侣FimC的亚基识别和FimC催化的亚基折叠是必需的。因此,FimC确保在菌毛的最多3,000个亚基中的每个亚基中形成定量的二硫键。 FimC和主要菌毛亚基FimA之间的复合物的X射线结构以及FimC催化的FimA折叠动力学表明FimC通过降低其拓扑复杂性来加速菌毛亚基的折叠。动力学数据与DsbA和FimC的体内测量浓度一起,预测了FimA在周质中的氧化折叠的体内半衰期为2 s。

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