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Insight on collagen self-assembly mechanisms by coupling molecular dynamics and UV spectroscopy techniques

机译:通过耦合分子动力学和UV光谱技术了解胶原蛋白自组装机制的洞察力

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摘要

Self-assembly of rat tail collagen type I was investigated by means of turbidity measurements and molecular dynamics simulations. Turbidity curves collected at different pH values show that the rate of aggregation was not linear in dependence from pH, with the fastest kinetics at pH 5.0 and the lowest at neutral pH. MD simulations were carried out on two regions with different hydropathicity, monitoring the aggregation of up to four staggered tropocollagen fragments at different ionic strength. At physiological conditions, association of lowly charged regions occurs more easily than for highly charged ones, the latter seeming to aggregate in a sequential way. The first contacts indicate for both regions that the driving force is hydrophobic, the electrostatic contribution becoming relevant at short distance. The direct inter-tropocollagen H-bonds confirm that fibrillogenesis is driven by loss of surface water from the monomers and involves in large percentage hydroxyproline residues. Low ionic strength dynamics leads to the formation of incorrect assemblies, driven by not shielded pairwise charge interactions.
机译:通过浊度测量和分子动力学模拟研究了大鼠尾胶原蛋白I型的自组装。在不同pH值收集的浊度曲线表明,聚集率并不是根据pH的依赖性线性,pH 5.0的最快动力学和中性pH下最低。 MD仿真在两种具有不同水下的地区进行,监测到不同离子强度的四个交错的流调片段的聚集。在生理条件下,低电压区域的关联比高度充电的区域更容易发生,后者似乎以连续的方式聚集。第一触点向两个区域表示驱动力是疏水的,静电贡献在短距离中变得相关。直接互压性H键确认原纤维生成通过来自单体的表面水损失而驱动,涉及大百分比羟脯氨酸残基。低离子强度动力学导致不屏蔽成对电荷相互作用的不正确组件的形成。

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