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《来自石头的拱门:通过受生物启发的集体变量理解蛋白质折叠能量景观》

The Arch from the Stones: Understanding Protein Folding Energy Landscapes via Bioinspired Collective Variables.

作者信息

Rizzi Valerio, Héritier Margaux, Piasentin Nicola, Aureli Simone, Gervasio Francesco Luigi

机构信息

School of Pharmaceutical Sciences, University of Geneva, Rue Michel-Servet 1, CH-1206 Geneva, CH, Switzerland.

Institute of Pharmaceutical Sciences of Western Switzerland, University of Geneva, CH-1206, Geneva, CH, Switzerland.

出版信息

J Phys Chem Lett. 2025 Sep 18;16(37):9636-9645. doi: 10.1021/acs.jpclett.5c02079. Epub 2025 Sep 8.

Abstract

Protein folding remains a formidable challenge despite significant advances, particularly in sequence-to-structure prediction. Accurately capturing thermodynamics and intermediates via simulations demands overcoming time scale limitations, making effective collective variable (CV) design for enhanced sampling crucial. Here, we introduce a strategy to automatically construct complementary, bioinspired CVs. These uniquely capture local hydrogen bonding─explicitly distinguishing protein-protein from protein-water interactions─and side-chain packing, taking into account both native and non-native contacts to enhance state resolution. Using these CVs in combination with advanced enhanced sampling methods, we simulate the folding of Chignolin and TRP-cage, validating our approach against extensive unbiased simulations. Our results accurately resolve complex free-energy landscapes, reveal critical intermediates such as the dry molten globule, and demonstrate agreement with reference data. This interpretable and portable strategy underscores the critical role of microscopic details in protein folding, opening up a promising avenue for studying larger and more-complex biomolecular systems.

摘要

尽管取得了重大进展,尤其是在序列到结构预测方面,但蛋白质折叠仍然是一项艰巨的挑战。通过模拟准确捕捉热力学和中间体需要克服时间尺度限制,因此设计有效的集体变量(CV)以增强采样至关重要。在这里,我们介绍一种自动构建互补的、受生物启发的CV的策略。这些CV独特地捕捉局部氢键——明确区分蛋白质-蛋白质相互作用和蛋白质-水相互作用——以及侧链堆积,同时考虑天然和非天然接触以提高状态分辨率。将这些CV与先进的增强采样方法结合使用,我们模拟了Chignolin和TRP-笼的折叠,通过广泛的无偏模拟验证了我们的方法。我们的结果准确地解析了复杂的自由能景观,揭示了关键中间体,如干燥的熔融球状体,并与参考数据达成一致。这种可解释且便携的策略强调了微观细节在蛋白质折叠中的关键作用,为研究更大、更复杂的生物分子系统开辟了一条有前景的途径。

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