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Structure and assembly of P-pili: A protruding hinge region used for assembly of a bacterial adhesion filament

机译:P-菌毛的结构和组装:用于组装细菌粘附细丝的突出铰链区域

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摘要

High-resolution structures of macromolecular complexes offer unparalleled insight into the workings of biological systems and hence the interplay of these systems in health and disease. We have adopted a multifaceted approach to understanding the pathogenically important structure of P-pili, the class I adhesion pili from pyelonephritic Escherichia coli. Our approach combines electron cryomicroscopy, site-directed mutagenesis, homology modeling, and energy calculations, resulting in a high-resolution model of PapA, the major structural element of these pili. Fitting of the modeled PapA subunit into the electron cryomicroscopy data provides a detailed view of these pilins within the supramolecular architecture of the pilus filament. A structural hinge in the N-terminal region of the subunit is located at the site of a newly resolved electron density that protrudes from the P-pilus surface. The structural flexibility provided by this hinge is necessary for assembly of P-pili, illustrating one solution to construction of large macromolecular complexes from small repeating units. These data support our hypothesis that domain-swapped pilin subunits transit the outer cell membrane vertically and rotate about the hinge for final positioning into the pilus filament. Our data confirm and supply a structural basis for much previous genetic, biochemical, and structural data. This model of the P-pilus filament provides an insight into the mechanism of assembly of a macromolecular complex essential for initiation of kidney infection by these bacteria.
机译:大分子复合物的高分辨率结构为生物学系统的运作提供了无与伦比的洞察力,因此也提供了这些系统在健康和疾病中的相互作用。我们采用了多方面的方法来了解P-菌毛的致病性重要结构,P-菌毛是来自肾盂肾上腺大肠杆菌的I类粘附菌毛。我们的方法结合了电子低温显微镜检查,定点诱变,同源性建模和能量计算,从而形成了PapA(这些菌毛的主要结构元素)的高分辨率模型。将模型化的PapA亚基拟合到电子低温镜检查数据中,可以提供菌毛丝超分子结构内这些菌毛蛋白的详细视图。亚基的N-末端区域中的结构铰链位于从P-菌毛表面突出的新分辨的电子密度的位置。这种铰链提供的结构灵活性对于组装P-菌毛是必需的,说明了从小型重复单元构建大型高分子复合物的一种解决方案。这些数据支持我们的假设,即域交换的菌毛蛋白亚基垂直穿过细胞外膜,并围绕铰链旋转,最终定位到菌毛丝中。我们的数据为以前的许多遗传,生化和结构数据证实并提供了结构基础。 P-菌毛丝的这种模型提供了对大分子复合物组装机理的洞察力,这些分子对于这些细菌引发肾脏感染至关重要。

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