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Self-assembly mechanism of rice glutelin amyloid fibril aggregates obtained through experimental and molecular dynamics simulation analysis

机译:通过实验和分子动力学模拟分析得到的水稻谷蛋白淀粉样原纤维聚集体的自组装机理

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In this study, intermolecular interactions and the self-assembly mechanism of rice glutelin amyloid fibril aggregates (RAFA) were studied using a combination of experimental and computer simulation methods. Based on the results of Thioflavin T fluorescence intensity, particle size measurement, and atomic force microscopy, the addition of NaCl and SDS accelerated the agglomeration of the RAFA, whereas adding urea caused the degradation of fibril clusters and the depolymerization of amyloid fibrils. The formation of the common cross 8-sheet structure in the RAFA was primarily driven by hydrogen bonding, hydrophobic and electrostatic interaction were also involved. Visual molecular dynamics simulations indicated that randomly distributed peptides, hydrolyzed from rice glutelin, experienced aggregation, dispersion, structural rearrangements, and positional modifications to form the RAFA, which was compatible with the nucleation-elongation mechanism. The study supports for clarifying the self-assembly pattern of amyloid fibril aggregates derived from food protein, which is crucial for the denovo design and practical application of protein-amyloid fibril aggregates.
机译:本研究采用实验和计算机模拟相结合的方法,研究了水稻谷肽淀粉样原纤维聚集体(RAFA)的分子间相互作用和自组装机理。根据硫黄素T荧光强度、粒径测量和原子力显微镜结果,NaCl和SDS的加入加速了RAFA的团聚,而添加尿素则导致原纤维簇的降解和淀粉样原纤维的解聚。RAFA中常见的交叉8片结构的形成主要由氢键驱动,疏水和静电相互作用也参与其中。目视分子动力学模拟表明,由水稻谷蛋白水解的随机分布的肽经历了聚集、分散、结构重排和位置修饰,形成RAFA,与成核-伸长机制相容。该研究支持阐明源自食品蛋白质的淀粉样原纤维聚集体的自组装模式,这对蛋白质-淀粉样原纤维聚集体的从头设计和实际应用至关重要。

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