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通过分子动力学模拟阐释蛋白质水合作用

Protein hydration elucidated by molecular dynamics simulation.

作者信息

Steinbach P J, Brooks B R

机构信息

Laboratory of Structural Biology, National Institutes of Health, Betheda, MD 20892.

出版信息

Proc Natl Acad Sci U S A. 1993 Oct 1;90(19):9135-9. doi: 10.1073/pnas.90.19.9135.

Abstract

Molecular dynamics (MD) simulation covering a wide range of hydration indicate that myoglobin is fully hydrated by 350 water molecules, in agreement with experiment. These waters, originally placed uniformly about the protein, form clusters that hydrate every charged group throughout the entire simulation. Some atoms in charged groups are hydrated by two water layers while 37% of the protein surface remains uncovered. The locations of the 350 waters are consistent with those of crystallographic waters resolved by x-ray and neutron diffraction. Hydration by 350 waters at 300 K stabilizes the conformation of carboxymyoglobin measured by x-ray diffraction throughout the entire protein, halves the rate of torsional transitions, and promotes alternative conformations for surface atoms. The glass transition observed experimentally in hydrated myoglobin near 220 K is also seen in the simulations and correlates with an increase in the number of dihedral angles undergoing transitions. The anharmonic protein motion above 220 K is enhanced by protein hydration.

摘要

涵盖广泛水合作用范围的分子动力学(MD)模拟表明,肌红蛋白被350个水分子完全水合,这与实验结果一致。这些最初均匀分布在蛋白质周围的水分子形成簇,在整个模拟过程中使每个带电基团水合。带电基团中的一些原子被两层水合,而37%的蛋白质表面仍未被覆盖。这350个水分子的位置与通过X射线和中子衍射解析的晶体学水分子位置一致。在300K下由350个水分子进行的水合作用使通过X射线衍射测量的整个蛋白质中羧基肌红蛋白的构象稳定,使扭转转变速率减半,并促进表面原子的替代构象。在水合肌红蛋白中于220K附近实验观察到的玻璃化转变在模拟中也可见,并且与经历转变的二面角数量增加相关。高于220K时非谐性的蛋白质运动因蛋白质水合作用而增强。

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