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Dynamics of locking of peptides onto growing amyloid fibrils

机译:将肽锁定到生长的淀粉样蛋白原纤维上的动力学

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Sequence-dependent variations in the growth mechanism and stability of amyloid fibrils, which are implicated in a number of neuro-degenerative diseases, are poorly understood. We have carried out extensive all-atom molecular dynamics simulations to monitor the structural changes that occur upon addition of random coil (RC) monomer fragments from the yeast prion Sup35 and Aβ-peptide onto a preformed fibril. Using the atomic resolution structures of the microcrystals as the starting points, we show that the RC → β-strand transition for the Sup35 fragment occurs abruptly over a very narrow time interval, whereas the acquisition of strand content is less dramatic for the hydrophobic-rich Aβ-peptide. Expulsion of water, resulting in the formation of a dry interface between 2 adjacent sheets of the Sup35 fibril, occurs in 2 stages. Ejection of a small number of discrete water molecules in the second stage follows a rapid decrease in the number of water molecules in the first stage. Stability of the Sup35 fibril is increased by a network of hydrogen bonds involving both backbone and side chains, whereas the marginal stability of the Aβ-fibrils is largely due to the formation of weak dispersion interaction between the hydrophobic side chains. The importance of the network of hydrogen bonds is further illustrated by mutational studies, which show that substitution of the Asn and Gln residues to Ala compromises the Sup35 fibril stability. Despite the similarity in the architecture of the amyloid fibrils, the growth mechanism and stability of the fibrils depend dramatically on the sequence.
机译:人们对淀粉样蛋白原纤维的生长机制和稳定性的序列依赖性变异知之甚少,这与许多神经退行性疾病有关。我们已经进行了广泛的全原子分子动力学模拟,以监测将来自酵母ion病毒Sup35和Aβ肽的无规卷曲(RC)单体片段添加到预先形成的原纤维上时发生的结构变化。使用微晶的原子拆分结构作为起点,我们显示Sup35片段的RC→β链跃迁在非常窄的时间间隔内突然发生,而对于富含疏水性的链,其链含量的获取并不那么剧烈Aβ-肽。水的排出,导致两个相邻的Sup35原纤维片之间形成干燥的界面,发生了两个阶段。在第二阶段中少量离散水分子的喷射跟随第一阶段中水分子数量的快速减少。 Sup35原纤维的稳定性通过包含主链和侧链的氢键网络增加,而Aβ原纤维的边缘稳定性很大程度上是由于疏水性侧链之间形成的弱分散相互作用所致。突变研究进一步说明了氢键网络的重要性,该研究表明,将Asn和Gln残基替换为Ala会损害Sup35原纤维的稳定性。尽管淀粉样蛋白原纤维的结构相似,但是原纤维的生长机理和稳定性在很大程度上取决于序列。

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