首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >Molecular dynamics simulation of protein denaturation:solvation of the hydrophobic cores and secondary structure ofbarnase.
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Molecular dynamics simulation of protein denaturation:solvation of the hydrophobic cores and secondary structure ofbarnase.

机译:蛋白质变性的分子动力学模拟:疏水核的溶剂化和二阶结构芽孢杆菌。

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摘要

The transition in barnase from the native state to a compact globule has been studied with high-temperature molecular dynamics simulations. A partial destruction of the alpha-helices and the outer strands of the beta-sheet is observed with water molecules replacing the hydrogen bonds of the secondary structural elements. Simultaneously, the main alpha-helix moves away from the beta-sheet and exposes the principal hydrophobic core, many of whose nonpolar side chains, beginning with the ones near the surface, become solvated by hydrogen-bonded water molecules. This step involves a significant increase in the solvent-exposed surface area; the resulting loss of stability due to the hydrophobic effect may be the major source of the activation barrier in the unfolding reaction. The detailed mechanism described here for the first stage of the denaturation of barnase, including the essential role of water molecules, is likely to be representative of protein denaturation, in general.
机译:已经通过高温分子动力学模拟研究了barnase从天然状态到紧密小球的转变。观察到α-螺旋和β-折叠的外链的部分破坏,其中水分子取代了二级结构元素的氢键。同时,主要的α-螺旋从β-折叠处移开并暴露出主要的疏水核,其中许多非极性侧链从靠近表面的侧链开始,被氢键水分子溶剂化。该步骤涉及显着增加溶剂暴露的表面积。由于疏水作用而导致的稳定性损失可能是展开反应中活化屏障的主要来源。一般而言,此处描述的针对barnase变性第一阶段的详细机制(包括水分子的基本作用)很可能代表蛋白质变性。

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