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Aggregation dynamics of charged peptides in water: Effect of salt concentration

机译:水中带电肽的聚集动力学:盐浓度的影响

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Extensive molecular dynamics simulations have been employed to probe the effects of salts on the kinetics and dynamics of early-stage aggregated structures of steric zipper peptides in water. The simulations reveal that the chemical identity and valency of cation in the salt play a crucial role in aggregate dynamics and morphology of the peptides. Sodium ions induce the most aggregated structures, but this is not replicated equivalently by potassium ions which are also monovalent. Divalent magnesium ions induce aggregation but to a lesser extent than that of sodium, and their interactions with the charged peptides are also significantly different. The aggregate morphology in the presence of monovalent sodium ions is a compact structure with interpenetrating peptides, which differs from the more loosely connected peptides in the presence of either potassium or magnesium ions. The different ways in which the cations effectively renormalize the charges of peptides are suggested to be the cause of the differential effects of different salts studied here. These simulations underscore the importance of understanding both the valency and nature of salts in biologically relevant aggregated structures.
机译:已经采用广泛的分子动力学模拟来探讨盐对水中早期植物肽早期聚集结构动力学和动力学的影响。仿真揭示了盐中阳离子的化学特性和价值在肽的聚集动力学和形态中起着至关重要的作用。钠离子诱导最占聚合的结构,但这不是由也是单价的钾离子等价的等价。二价镁离子诱导聚集,但在小于钠的程度上,它们与带电肽的相互作用也显着不同。在一价钠离子存在下的聚集形态是具有互穿肽的紧凑结构,其在钾或镁离子存在下与更松散的肽不同。阳离子有效地重整肽的指控的不同方式被认为是这里研究不同盐的差异效应的原因。这些模拟强调了了解生物学相关汇总结构中盐的价值和性质的重要性。

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