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首页> 外文期刊>International Journal of Molecular Sciences >The Folding of de Novo Designed Protein DS119 via Molecular Dynamics Simulations
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The Folding of de Novo Designed Protein DS119 via Molecular Dynamics Simulations

机译:通过分子动力学模拟对从头设计的蛋白质DS119进行折叠

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As they are not subjected to natural selection process, de novo designed proteins usually fold in a manner different from natural proteins. Recently, a de novo designed mini-protein DS119, with a βαβ motif and 36 amino acids, has folded unusually slowly in experiments, and transient dimers have been detected in the folding process. Here, by means of all-atom replica exchange molecular dynamics (REMD) simulations, several comparably stable intermediate states were observed on the folding free-energy landscape of DS119. Conventional molecular dynamics (CMD) simulations showed that when two unfolded DS119 proteins bound together, most binding sites of dimeric aggregates were located at the N-terminal segment, especially residues 5–10, which were supposed to form β-sheet with its own C-terminal segment. Furthermore, a large percentage of individual proteins in the dimeric aggregates adopted conformations similar to those in the intermediate states observed in REMD simulations. These results indicate that, during the folding process, DS119 can easily become trapped in intermediate states. Then, with diffusion, a transient dimer would be formed and stabilized with the binding interface located at N-terminals. This means that it could not quickly fold to the native structure. The complicated folding manner of DS119 implies the important influence of natural selection on protein-folding kinetics, and more improvement should be achieved in rational protein design.
机译:由于它们没有经过自然选择过程,因此从头设计的蛋白质通常以不同于天然蛋白质的方式折叠。最近,从头设计的具有βαβ基序和36个氨基酸的微型蛋白质DS119在实验中异常缓慢地折叠,并且在折叠过程中检测到瞬时二聚体。在这里,通过全原子副本交换分子动力学(REMD)模拟,在DS119的折叠自由能态下观察到了几种相对稳定的中间态。常规分子动力学(CMD)模拟显示,当两个未折叠的DS119蛋白结合在一起时,大多数二聚体聚集体的结合位点位于N末端片段,尤其是5-10残基,这些残基被认为可以形成具有自身C的β-折叠。 -末端区段。此外,二聚体聚集体中很大比例的单个蛋白质所采用的构象类似于在REMD模拟中观察到的中间状态。这些结果表明,在折叠过程中,DS119容易陷入中间状态。然后,通过扩散,将形成瞬态二聚体并利用位于N-末端的结合界面使其稳定。这意味着它无法快速折叠到本机结构。 DS119复杂的折叠方式暗示了自然选择对蛋白质折叠动力学的重要影响,在合理的蛋白质设计上应实现更多改进。

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