Molecular dynamics simulations of the unfolding of beta(2)-microglobulin and its variants.

Buyong Ma, Ruth Nussinov
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引用次数: 29

Abstract

In this study, we examined the unfolding processes of native beta(2)-microglobulin and two related variants, one with an N-terminal hexapeptide deletion DeltaN6 and another with Lys57-Asp58 cleavage, by high-temperature molecular dynamics simulations. Three simulation models were used, molecular dynamics (MD) simulations with explicit water solvation, MD simulations with the CHARMM EEF1 force field and Langevin dynamics with the CHARMM EEF1 force field. Our simulations reproduce many of the experimentally observed structural changes. The most striking agreement is in the beta-strands to alpha-helix transition. In our simulations, strands beta(3), beta(4) and beta(5) consistently change to alpha-helix, whereas beta(8) changes to an alpha-helix only briefly. Through comparisons of the conformational behavior of the native, the DeltaN6 and the Lys-cut beta(2)-m, using the three simulation methods, we identified the consensus conformational changes that differentiate between the native beta(2)-m and its two variants. We found that the main effect of the removal of the N-terminal hexapeptide is to increase the separation between strands beta(2) and beta(6) and to facilitate the beta to alpha transition. On the other hand, the lysine cleavage only increases the flexibility of strand beta(5) and does not affect the interactions between strands beta(2) and beta(6). These conformational changes may relate to polymerization tendencies of these variants.

β(2)-微球蛋白及其变体展开的分子动力学模拟。
在这项研究中,我们通过高温分子动力学模拟研究了天然β(2)-微球蛋白和两种相关变体的展开过程,其中一种具有n端六肽缺失DeltaN6,另一种具有Lys57-Asp58切割。采用了三种模拟模型:带显式水溶剂化的分子动力学模型、带CHARMM EEF1力场的分子动力学模型和带CHARMM EEF1力场的朗格万动力学模型。我们的模拟再现了许多实验观察到的结构变化。最显著的一致是在-链到-螺旋的转变中。在我们的模拟中,链β(3)、链β(4)和链β(5)不断地转变为α -螺旋,而链β(8)只是短暂地转变为α -螺旋。通过比较原生、DeltaN6和Lys-cut β (2)-m的构象行为,使用三种模拟方法,我们确定了区分原生β (2)-m及其两种变体的一致构象变化。我们发现,去除n端六肽的主要作用是增加β(2)和β(6)链之间的分离,并促进β到α的转变。另一方面,赖氨酸的裂解只增加了β链(5)的柔韧性,而不影响β链(2)和β链(6)之间的相互作用。这些构象变化可能与这些变异体的聚合倾向有关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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