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涉及二硫键形成的蛋白质折叠的多层次分析框架。

Multilevel Framework for Analysis of Protein Folding Involving Disulfide Bond Formation.

机构信息

Yusuf Hamied Department of Chemistry, University of Cambridge, Lensfield Road, Cambridge CB2 1EW, U.K.

出版信息

J Phys Chem B. 2024 Apr 4;128(13):3145-3156. doi: 10.1021/acs.jpcb.4c00104. Epub 2024 Mar 21.

Abstract

In this study, a three-layered multicenter ONIOM approach is implemented to characterize the naive folding pathway of bovine pancreatic trypsin inhibitor (BPTI). Each layer represents a distinct level of theory, where the initial layer, encompassing the entire protein, is modeled by a general all-atom force-field GFN-FF. An intermediate electronic structure layer consisting of three multicenter fragments is introduced with the state-of-the-art semiempirical tight-binding method GFN2-TB. Higher accuracy, specifically addressing the breaking and formation of the three disulfide bonds, is achieved at the innermost layer using the composite DFT method rSCAN-3c. Our analysis sheds light on the structural stability of BPTI, particularly the significance of interlinking disulfide bonds. The accuracy and efficiency of the multicenter QM/SQM/MM approach are benchmarked using the oxidative formation of cystine. For the folding pathway of BPTI, relative stabilities are investigated through the calculation of free energy contributions for selected intermediates, focusing on the impact of the disulfide bond. Our results highlight the intricate trade-off between accuracy and computational cost, demonstrating that the multicenter ONIOM approach provides a well-balanced and comprehensive solution to describe electronic structure effects in biomolecular systems. We conclude that multiscale energy landscape exploration provides a robust methodology for the study of intriguing biological targets.

摘要

在这项研究中,我们采用了三层多中心 ONIOM 方法来描绘牛胰蛋白酶抑制剂(BPTI)的原始折叠途径。每一层代表不同的理论水平,其中包含整个蛋白质的初始层由通用全原子力场 GFN-FF 建模。引入了包含三个多中心片段的中间电子结构层,采用最先进的半经验紧束缚方法 GFN2-TB。在最内层使用复合 DFT 方法 rSCAN-3c 可以实现更高的精度,特别是针对三个二硫键的断裂和形成。我们的分析揭示了 BPTI 的结构稳定性,特别是二硫键相互连接的重要性。多中心 QM/SQM/MM 方法的准确性和效率使用半胱氨酸的氧化形成进行了基准测试。对于 BPTI 的折叠途径,通过计算选定中间体的自由能贡献来研究相对稳定性,重点关注二硫键的影响。我们的结果强调了准确性和计算成本之间的复杂权衡,表明多中心 ONIOM 方法为描述生物分子系统中的电子结构效应提供了一种平衡而全面的解决方案。我们得出结论,多尺度能量景观探索为研究有趣的生物靶标提供了一种稳健的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac96/11000224/19d25bf137ab/jp4c00104_0001.jpg

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