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Cooperative folding of intrinsically disordered domains drives assembly of a strong elongated protein

机译:内在无序域的合作折叠驱动强拉长蛋白的组装

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摘要

Bacteria exploit surface proteins to adhere to other bacteria, surfaces and host cells. Such proteins need to project away from the bacterial surface and resist significant mechanical forces. SasG is a protein that forms extended fibrils on the surface of Staphylococcus aureus and promotes host adherence and biofilm formation. Here we show that although monomeric and lacking covalent cross-links, SasG maintains a highly extended conformation in solution. This extension is mediated through obligate folding cooperativity of the intrinsically disordered E domains that couple non-adjacent G5 domains thermodynamically, forming interfaces that are more stable than the domains themselves. Thus, counterintuitively, the elongation of the protein appears to be dependent on the inherent instability of its domains. The remarkable mechanical strength of SasG arises from tandemly arrayed ‘clamp' motifs within the folded domains. Our findings reveal an elegant minimal solution for the assembly of monomeric mechano-resistant tethers of variable length.
机译:细菌利用表面蛋白粘附至其他细菌,表面和宿主细胞。这些蛋白质需要从细菌表面突出并抵抗显着的机械力。 SasG是一种蛋白质,可在金黄色葡萄球菌表面形成延伸的原纤维,并促进宿主粘附和生物膜形成。在这里我们表明,尽管单体和缺乏共价交联,但SasG在溶液中保持高度延伸的构象。这种扩展是通过固有地无序排列的E域的折叠协作来介导的,该E域在热力学上耦合非相邻的G5域,形成比域本身更稳定的界面。因此,与直觉相反,蛋白质的延伸似乎取决于其结构域的固有不稳定性。 SasG出色的机械强度来自折叠区域内串联排列的“钳位”图案。我们的发现揭示了一种可变长度单体抗机械束缚线的极佳解决方案。

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