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Mechanism of collagen folding propagation studied by Molecular Dynamics simulations

机译:分子动力学模拟研究胶原折叠折叠繁殖的机制

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摘要

Collagen forms a characteristic triple helical structure and plays a central role for stabilizing the extra-cellular matrix. After a C-terminal nucleus formation folding proceeds to form long triple-helical fibers. The molecular details of triple helix folding process is of central importance for an understanding of several human diseases associated with misfolded or unstable collagen fibrils. However, the folding propagation is too rapid to be studied by experimental high resolution techniques. We employed multiple Molecular Dynamics simulations starting from unfolded peptides with an already formed nucleus to successfully follow the folding propagation in atomic detail. The triple helix folding was found to propagate involving first two chains forming a short transient template. Secondly, three residues of the third chain fold on this template with an overall mean propagation of ~75 ns per unit. The formation of loops with multiples of the repeating unit was found as a characteristic misfolding event especially when starting from an unstable nucleus. Central Gly→Ala or Gly→Thr substitutions resulted in reduced stability and folding rates due to structural deformations interfering with folding propagation.
机译:胶原蛋白形成特征三螺旋结构,并对稳定细胞矩阵进行稳定性作用。在C末端核形成折叠后进行以形成长三螺旋纤维。 Triple Helix折叠过程的分子细节具有核心重要性,以了解与错误折叠或不稳定的胶原纤维有关的几种人类疾病。然而,通过实验高分辨率技术研究折叠传播太快了。我们使用从展开的肽开始的多种分子动力学模拟,其中已经形成的核来成功地遵循原子细节以折叠繁殖。发现三重螺旋折叠传播涉及前两条链形成短暂的瞬态模板。其次,第三链的三个残留物在该模板上折叠,整体平均平均传播为每单位〜75ns。在从不稳定的核开始开始时,发现具有重复单元的倍数的环的形成作为特征错误的事件。 Central Gly→Ala或Gly→Thr取代导致由于结构变形干扰折叠传播而导致的稳定性和折叠速率降低。

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