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非天然协同相互作用调节蛋白质折叠速率。

Non-Native Cooperative Interactions Modulate Protein Folding Rates.

机构信息

Department of Physics, Institute of Biosciences, Humanities and Exact Sciences , São Paulo State University (UNESP) , São José do Rio Preto - São Paulo 15054-000 , Brazil.

Brazilian Bioethanol Science and Technology Laboratory - CTBE , Campinas - São Paulo 13083-100 , Brazil.

出版信息

J Phys Chem B. 2018 Dec 6;122(48):10817-10824. doi: 10.1021/acs.jpcb.8b08990. Epub 2018 Nov 21.

Abstract

The energy landscape theory and the funnel description have had remarkable success in describing protein folding mechanisms and function. However, there are experimental results that are not understood using this approach. Among the puzzling examples are the α-spectrin results, in which the R15 domain folds 3 orders of magnitude more rapidly than the homologous R16 and R17, even though they are structurally very similar to each other. Such anomalous observations are usually attributed to the influence of internal friction on protein folding rates, but this is not a satisfactory explanation. In this study, this phenomenon is addressed by focusing on non-native interactions that could account for this effect. We carried out molecular dynamics simulations with structure-based C models, in which the folding process of α-spectrin domains was investigated. The simulations take into account the hydrophobic and electrostatic contributions separately. The folding time results have shown qualitative agreement with the experimental data. We have also investigated mutations in R16 and R17, and the simulation folding time results correlate with the observed experimental ones. We suggest that the origin of the internal friction, at least in this case, might emerge from a cooperativity effect of these non-native interactions.

摘要

能量景观理论和漏斗描述在描述蛋白质折叠机制和功能方面取得了显著的成功。然而,仍有一些实验结果无法用这种方法来解释。其中令人费解的例子是α- spectrin 的结果,在这个结果中,R15 结构域的折叠速度比同源的 R16 和 R17 快 3 个数量级,尽管它们在结构上非常相似。这种异常的观察通常归因于内部摩擦对蛋白质折叠速率的影响,但这并不是一个令人满意的解释。在这项研究中,我们通过关注可能导致这种效应的非天然相互作用来解决这一现象。我们进行了基于结构的 Cα 模型的分子动力学模拟,其中研究了α- spectrin 结构域的折叠过程。模拟分别考虑了疏水性和静电贡献。折叠时间的结果与实验数据定性一致。我们还研究了 R16 和 R17 的突变,模拟折叠时间的结果与观察到的实验结果相关。我们认为,至少在这种情况下,内部摩擦的起源可能源于这些非天然相互作用的协同效应。

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