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锌离子与淀粉样β蛋白 N 端结合的力场评估和加速分子动力学模拟。

Forcefield evaluation and accelerated molecular dynamics simulation of Zn(II) binding to N-terminus of amyloid-β.

机构信息

School of Chemistry, Cardiff University, Park Place, Cardiff, CF10 3AT, UK.

School of Chemistry, Cardiff University, Park Place, Cardiff, CF10 3AT, UK.

出版信息

Comput Biol Chem. 2021 Aug;93:107540. doi: 10.1016/j.compbiolchem.2021.107540. Epub 2021 Jul 8.

Abstract

We report conventional and accelerated molecular dynamics simulation of Zn(II) bound to the N-terminus of amyloid-β. By comparison against NMR data for the experimentally determined binding mode, we find that certain combinations of forcefield and solvent model perform acceptably in describing the size, shape and secondary structure, and that there is no appreciable difference between implicit and explicit solvent models. We therefore used the combination of ff14SB forcefield and GBSA solvent model to compare the result of different binding modes of Zn(II) to the same peptide, using accelerated MD to enhance sampling and comparing the free peptide simulated in the same way. We show that Zn(II) imparts significant rigidity to the peptide, disrupts the secondary structure and pattern of salt bridges seen in the free peptide, and induces closer contact between residues. Free energy surfaces in 1 or 2 dimensions further highlight the effect of metal coordination on peptide's spatial extent. We also provide evidence that accelerated MD provides improved sampling over conventional MD by visiting as many or more configurations in much shorter simulation times.

摘要

我们报告了 Zn(II) 与淀粉样蛋白-β N 端结合的常规和加速分子动力学模拟。通过与实验确定的结合模式的 NMR 数据进行比较,我们发现某些力场和溶剂模型的组合在描述大小、形状和二级结构方面表现良好,并且在隐式和显式溶剂模型之间没有明显差异。因此,我们使用 ff14SB 力场和 GBSA 溶剂模型的组合来比较 Zn(II) 与同一肽的不同结合模式的结果,使用加速 MD 来增强采样,并以同样的方式比较自由肽的模拟。我们表明,Zn(II) 赋予肽显著的刚性,破坏了自由肽中存在的二级结构和盐桥模式,并诱导残基之间更紧密的接触。1 维和 2 维的自由能表面进一步强调了金属配位对肽空间范围的影响。我们还提供了证据表明,加速 MD 通过在更短的模拟时间内访问更多或相同数量的构型,提供了比常规 MD 更好的采样。

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