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环肽的质量加权分子动力学模拟

Mass-weighted molecular dynamics simulation of cyclic polypeptides.

作者信息

Mao B, Maggiora G M, Chou K C

机构信息

Upjohn Research Laboratories, Kalamazoo, Michigan 49001.

出版信息

Biopolymers. 1991 Aug;31(9):1077-86. doi: 10.1002/bip.360310907.

Abstract

A modified molecular dynamics (MD) method in which atomic masses are weighted was developed previously for studying the conformational flexibility of neuroregulating tetrapeptide Phe-Met-Arg-Phe-amide (FMRF-amide). The method has now been applied to longer and constrained molecules, namely a disulfide-linked cyclic hexapeptide, c[CYFQNC], and its linear and "pseudo-cyclic" analogues. The sampling of dehedral conformational space of teh linear hexapeptide in mass-weighted MD simulations was found to be improved significantly over conventional MD simulations, as in the case of the shorter FMRF-amide molecule studied previously. In the cyclic hexapeptide, the internal constraint of the molecule due to the intramolecular disulfide bond (hence the absence of free terminals in the molecule) does not adversely affect the significant improvement of conformational sampling in mass-weighted MD simulations over normal MD simulations. The pseudo-cyclic polypeptide is identical to the linear CYFQNC molecule in amino acid sequence (i.e., side chains of the cysteine residues are reduced), but the positions of its two terminal heavy atoms were held fixed in space such that the molecule has a nearly cyclic conformation. For this molecule, the mass-weighted MD simulation generated a wide range of polypeptide backbone conformations covering the internal dihedral degrees of freedom; moreover, the physical space of the pseudo-cyclic structure was also sampled in a complete revolution of the entire molecular fragment about the two fixed termini during the simulation. These characteristics suggest that mass-weighted MD can also be an extremely useful method for conformational analyses of constrained molecules and, in particular, for modeling loops on protein surfaces.

摘要

先前开发了一种改良的分子动力学(MD)方法,其中原子质量被加权,用于研究神经调节四肽苯丙氨酸 - 甲硫氨酸 - 精氨酸 - 苯丙氨酸酰胺(FMRF - 酰胺)的构象灵活性。该方法现已应用于更长且受约束的分子,即二硫键连接的环状六肽c[CYFQNC]及其线性和“假环状”类似物。正如之前对较短的FMRF - 酰胺分子的研究那样,发现质量加权MD模拟中线性六肽的二面角构象空间采样比传统MD模拟有显著改善。在环状六肽中,由于分子内二硫键导致的分子内部约束(因此分子中没有自由末端),在质量加权MD模拟中构象采样的显著改善不会受到不利影响,优于正常MD模拟。假环状多肽在氨基酸序列上与线性CYFQNC分子相同(即半胱氨酸残基的侧链被还原),但其两个末端重原子的位置在空间中保持固定,使得分子具有近乎环状的构象。对于该分子,质量加权MD模拟生成了涵盖内部二面角自由度的广泛多肽主链构象;此外,在模拟过程中,整个分子片段围绕两个固定末端完整旋转一周时,也对假环状结构的物理空间进行了采样。这些特性表明,质量加权MD也可以是一种极其有用的方法,用于对受约束分子进行构象分析,特别是用于模拟蛋白质表面的环。

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