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Unfolding mechanics of multiple OspA substructures investigated with single molecule force spectroscopy.

机译:用单分子力谱研究了多个OspA亚结构的展开机理。

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We investigated mechanical unfolding of Borrelia burgdorferi outer surface protein A (OspA), a Lyme disease antigen containing a unique single-layer beta-sheet, with atomic force microscopy (AFM). We mechanically stretched a monomeric unit, rather than a tandem repeat, by pulling it from its N and C-terminal residues without using intervening polymer as a spacer. We detected two peaks in the force-extension profile before the final rupture of a fully extended polypeptide, which we interpreted as unfolding of multiple substructures in OspA. The double-peaked unfolding curves are consistent with results of previous thermodynamic studies showing two cooperative units in OspA. The mechanical unfolding processes were reversible, and the two substructures refolded within one second. Mutations near the boundary of the two thermodynamic cooperative units reduced the height of the first unfolding peak to undetectable levels and marginally affected the second one, indicating that the boundary between the two mechanical substructures is related to that previously assigned between the thermodynamic cooperative units. Based on a "worm-like chain" analysis of our AFM data, we propose a model for mechanical unfolding of OspA, where nearly a half of the chain is stretched with minimal resistive force, followed by sequential breakdown of C-terminal and N-terminal substructures. Based on these results, we discuss similarities and differences between mechanical and thermodynamic unfolding reactions of OspA. This work demonstrates that AFM study of monomeric proteins can elucidate details of the intramolecular mechanics of protein substructures.
机译:我们用原子力显微镜(AFM)研究了伯氏疏螺旋体外表面蛋白A(OspA),一种含有独特单层β-折叠的莱姆病抗原的机械展开。我们通过机械拉伸一个单体单元,而不是串联重复序列,将其从N和C末端残基中拉出,而无需使用中间聚合物作为间隔基。在完全延伸的多肽最终断裂之前,我们在力-延伸曲线中检测到两个峰,我们将其解释为OspA中多个亚结构的展开。双峰展开曲线与先前的热力学研究结果一致,后者显示OspA中有两个协同单元。机械展开过程是可逆的,并且两个子结构在一秒钟内重新折叠。两个热力学合作单元边界附近的突变将第一个展开峰的高度降低到无法检测的水平,并轻微影响了第二个展开子峰,表明两个机械子结构之间的边界与先前在热力学合作单元之间分配的边界有关。根据对我们AFM数据的“蠕虫状链”分析,我们提出了OspA机械展开的模型,其中,将近一半的链以最小的阻力拉伸,然后依次破坏C端和N-终端子结构。基于这些结果,我们讨论了OspA的机械和热力学展开反应之间的异同。这项工作表明单体蛋白质的AFM研究可以阐明蛋白质亚结构的分子内力学细节。

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