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在纯水中和电解质溶液中基于丙氨酸的肽的螺旋形成:来自分子动力学模拟的见解。

Helix formation by alanine-based peptides in pure water and electrolyte solutions: insights from molecular dynamics simulations.

机构信息

Department of Chemistry, University of Cyprus, PO20537, CY1678, Nicosia, Cyprus.

出版信息

J Phys Chem B. 2013 Aug 29;117(34):9866-76. doi: 10.1021/jp406231g. Epub 2013 Aug 21.

DOI:10.1021/jp406231g
PMID:23919617
Abstract

Specific ion effects on oligopeptide conformations in solution are attracting strong research attention, because of their impact on the protein-folding problem and on several important biological-biotechnological applications. In this work, we have addressed specific effects of electrolytes on the tendency of oligopeptides toward formation and propagation of helical segments. We have used replica-exchange molecular dynamics (REMD) simulations to study the conformations of two short hydrophobic peptides [Ace-(AAQAA)3-Nme (AQ), and Ace-A8-Nme (A8)] in pure water and in aqueous solutions of sodium chloride (NaCl) and sodium iodide (NaI) with concentrations of 1 and 3 M. The average helicities of the AQ peptide have been analyzed to yield Lifson-Roig (LR) parameters for helix nucleation and helix propagation. The salt dependence of these parameters suggests that electrolytes tend to stabilize the helical conformations of short peptides by enhancing the helix nucleation parameter. The helical conformations of longer oligopeptides are destabilized in the presence of salts, however, because the helix propagation parameters are reduced by electrolytes. On top of this general trend, we observe a significant specific salt effect in these simulations. The hydrophobic iodide ion in NaI solutions has a high affinity for the peptide backbone, which reflects itself in an enhanced helix nucleation and a reduced helix propagation parameter with respect to pure water or NaCl solutions. The present work thus explains the computational evidence that electrolytes tend to stabilize the compact conformations of short peptides and destabilize them for longer peptides, and it also sheds additional light on the specific salt effects on compact peptide conformations.

摘要

特定离子对溶液中寡肽构象的影响引起了人们的强烈关注,因为它们对蛋白质折叠问题和许多重要的生物-生物技术应用有影响。在这项工作中,我们研究了电解质对寡肽形成和螺旋片段扩展倾向的特定影响。我们使用复制交换分子动力学(REMD)模拟来研究两种短疏水性肽[Ace-(AAQAA)3-Nme(AQ)和 Ace-A8-Nme(A8)]在纯水中以及在浓度为 1 和 3 M 的氯化钠(NaCl)和碘化钠(NaI)水溶液中的构象。分析 AQ 肽的平均螺旋度,以获得用于螺旋核形成和螺旋扩展的 Lifson-Roig(LR)参数。这些参数的盐依赖性表明,电解质通过增强螺旋核形成参数来稳定短肽的螺旋构象。然而,由于电解质降低了螺旋扩展参数,长寡肽的螺旋构象在存在盐时会被破坏。除了这种一般趋势外,我们在这些模拟中观察到特定盐的显著影响。碘化钠溶液中的疏水性碘离子与肽骨架具有高亲和力,这反映在增强的螺旋核形成和相对于纯水或 NaCl 溶液降低的螺旋扩展参数上。因此,本工作解释了计算证据,即电解质倾向于稳定短肽的紧凑构象,而对更长的肽则使其不稳定,并且还进一步阐明了特定盐对紧凑肽构象的影响。

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Helix formation by alanine-based peptides in pure water and electrolyte solutions: insights from molecular dynamics simulations.在纯水中和电解质溶液中基于丙氨酸的肽的螺旋形成:来自分子动力学模拟的见解。
J Phys Chem B. 2013 Aug 29;117(34):9866-76. doi: 10.1021/jp406231g. Epub 2013 Aug 21.
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