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Conformational Changes and Free Energies in a Proline Isomerase

机译:脯氨酸异构酶的构象变化和自由能

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Proteins are dynamic molecules and their ability to adopt alternative conformations is central to their biological function. The structural and biophysical properties of transiently and sparsely populated states are, however, difficult to study and an atomic-level description of those states is challenging. We have used enhanced-sampling all-atom, explicit-solvent molecular simulations, guided by structural information from X-ray crystallography and NMR, to describe quantitatively the transition between the major and a minor state of Cyclophilin A, thus providing new insight into how dynamics can affect enzyme function. We calculate the conformational free energy between the two states, and comparison with experiments demonstrates a surprisingly high accuracy for both the wild type protein and a mutant that traps the protein in its alternative conformation. Our results demonstrate how the combination of state-of-the-art force fields and enhanced sampling methods can provide a detailed and quantitative description of the conformational changes in proteins such as those observed in Cyclophilin A.
机译:蛋白质是动态分子,其采用替代构象的能力是其生物学功能的核心。但是,瞬态和稀疏状态的结构和生物物理特性很难研究,并且对这些状态进行原子级描述是具有挑战性的。我们已使用增强采样的全原子显式溶剂分子模拟,在X射线晶体学和NMR的结构信息的指导下,定量描述了亲环蛋白A主状态和次状态之间的过渡,从而提供了新的见解动态会影响酶的功能。我们计算了这两种状态之间的构象自由能,并与实验进行了比较,证明了野生型蛋白质和将蛋白质陷于其替代构象的突变体的惊人的高精度。我们的结果证明了最新的力场与增强的采样方法的结合如何能够提供蛋白质构象变化的详细和定量描述,例如亲环蛋白A中观察到的那些。

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