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Energetic and entropic contributions to the interactions between like-charged groups in cationic peptides: A molecular dynamics simulation study

机译:阳离子肽中带电荷基团之间相互作用的能量和熵的贡献:分子动力学模拟研究

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摘要

The interaction between like-charged amino acid residues has been proposed to stabilize the folded state of peptides and proteins, and to modulate the substrate binding and the action mechanism of enzymes. We have used an alanine- and lysine-based peptide as a model system to study the interaction between like charges, and we have performed a 16-nsec molecular dynamics simulation in solution. The calculated potential of mean force for the approach of the lysine’s Nζ atoms showed a minimum at a distance of 0.7 nm, in agreement with the separation probabilities obtained from analysis of protein crystal structures. The analysis of the individual energy components showed that the solvent polarization pays for the approach of the like charges and that the van der Waals energies do not contribute significantly. The entropic contributions have been divided in conformational and desolvation terms. Both terms favor the formation of the charge pair. A 10-fold increase in counterion concentration was observed—with respect to its bulk concentration—next to the peptide charges, which helps to stabilize the peptide charges at a close distance.
机译:已提出带相同电荷的氨基酸残基之间的相互作用以稳定肽和蛋白质的折叠状态,并调节底物结合和酶的作用机理。我们已经使用基于丙氨酸和赖氨酸的肽作为模型系统来研究类似电荷之间的相互作用,并且我们在溶液中进行了16纳秒的分子动力学模拟。计算得出的赖氨酸Nζ原子逼近平均力的潜力在0.7 nm的距离处显示出最小值,这与通过分析蛋白质晶体结构获得的分离概率相符。对单个能量成分的分析表明,溶剂极化为类似电荷的注入付出了代价,范德华能量没有显着贡献。熵的贡献被分为构象和去溶剂化两个术语。这两个术语都有利于电荷对的形成。相对于其总浓度,在肽电荷旁边观察到抗衡离子浓度增加了10倍,这有助于稳定近距离处的肽电荷。

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