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首页> 外文期刊>Nature structural biology >Pulling geometry defines the mechanical resistance of a beta-sheet protein
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Pulling geometry defines the mechanical resistance of a beta-sheet protein

机译:拉动几何形状定义了β-折叠蛋白的机械抵抗力

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摘要

Proteins show diverse responses when placed under mechanical stress. The molecular origins of their differing mechanical resistance are still unclear, although the orientation of secondary structural elements relative to the applied force vector is thought to have an important function. Here, by using a method of protein immobilization that allows force to be applied to the same all-beta protein, E2lip3, in two different directions, we show that the energy landscape for mechanical unfolding is markedly anisotropic. These results, in combination with molecular dynamics ( MD) simulations, reveal that the unfolding pathway depends on the pulling geometry and is associated with unfolding forces that differ by an order of magnitude. Thus, the mechanical resistance of a protein is not dictated solely by amino acid sequence, topology or unfolding rate constant, but depends critically on the direction of the applied extension. [References: 43]
机译:当置于机械应力下时,蛋白质显示出多种反应。尽管人们认为二级结构元素相对于施加的力矢量的定向具有重要作用,但它们不同的机械阻力的分子起源仍不清楚。在这里,通过使用一种蛋白质固定方法,该方法可以在两个不同的方向上将力施加到相同的全beta蛋白E2lip3上,我们显示出机械展开的能量格局具有明显的各向异性。这些结果与分子动力学(MD)模拟相结合,揭示了展开路径取决于牵拉几何形状,并且与展开力相差一个数量级。因此,蛋白质的机械抗性不仅仅由氨基酸序列,拓扑或解折叠速率常数决定,而且关键取决于所施加延伸的方向。 [参考:43]

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