在全原子模拟中观察到非天然纠缠蛋白错误折叠,并得到实验结构集成的支持。

IF 12.5 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Quyen V Vu, Ian Sitarik, Yang Jiang, Yingzi Xia, Piyoosh Sharma, Divya Yadav, Hyebin Song, Mai Suan Li, Stephen D Fried, Edward P O'Brien
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引用次数: 0

摘要

已知有几种机制导致单体蛋白错误折叠。粗粒度的模拟预测了另一种机制的存在,包括非共价套索纠缠,这是一种长寿命的动力学陷阱,结构类似于天然状态。在这里,我们研究了这种错误折叠状态是否发生在泛素和λ-抑制因子的长时间尺度全原子折叠模拟中。我们发现这些纠缠的错误折叠态在更高分辨率的模型中被填充。然而,由于泛素和λ-抑制因子的体积小,这些状态是短暂的。相比之下,对一种更大的蛋白质IspE的粗粒度模拟预测,它会形成长期存在的错误折叠状态。使用阿伦尼乌斯外推法应用于全原子模拟,我们估计这些IspE错误折叠态在保持可溶性的同时具有与天然态相似的寿命。我们进一步表明,这些错误折叠状态与有限蛋白水解和交联质谱实验推断的结构变化一致。我们的研究结果表明,在全原子模拟和实验中,由非原生纠缠组成的错误折叠态可以持续很长时间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Non-native entanglement protein misfolding observed in all-atom simulations and supported by experimental structural ensembles.

Several mechanisms are known to cause monomeric protein misfolding. Coarse-grained simulations have predicted an additional mechanism exists involving off-pathway, noncovalent lasso entanglements, which are long-lived kinetic traps and structurally resemble the native state. Here, we examine whether such misfolded states occur in long-timescale, all-atom folding simulations of ubiquitin and λ-repressor. We find that these entangled misfolded states are populated in higher-resolution models. However, because of the small size of ubiquitin and λ-repressor, these states are short-lived. In contrast, coarse-grained simulations of a larger protein, IspE, predict that it populates long-lived misfolded states. Using an Arrhenius extrapolation applied to all-atom simulations, we estimate that these IspE misfolded states have lifetimes similar to the native state while remaining soluble. We further show that these misfolded states are consistent with the structural changes inferred from limited proteolysis and cross-linking mass spectrometry experiments. Our results indicate that misfolded states composed of non-native entanglements can persist for long timescales in both all-atom simulations and experiments.

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来源期刊
Science Advances
Science Advances 综合性期刊-综合性期刊
CiteScore
21.40
自引率
1.50%
发文量
1937
审稿时长
29 weeks
期刊介绍: Science Advances, an open-access journal by AAAS, publishes impactful research in diverse scientific areas. It aims for fair, fast, and expert peer review, providing freely accessible research to readers. Led by distinguished scientists, the journal supports AAAS's mission by extending Science magazine's capacity to identify and promote significant advances. Evolving digital publishing technologies play a crucial role in advancing AAAS's global mission for science communication and benefitting humankind.
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