School of Information Science and Electrical Engineering, Shandong Jiaotong University, Jinan 250357, China.
School of Aeronautics, Shandong Jiaotong University, Jinan 250357, China.
Molecules. 2023 Jun 15;28(12):4792. doi: 10.3390/molecules28124792.
The heat shock protein (HSP90) has been an import target of drug design in the treatment of human disease. An exploration of the conformational changes in HSP90 can provide useful information for the development of efficient inhibitors targeting HSP90. In this work, multiple independent all-atom molecular dynamics (AAMD) simulations followed by calculations of the molecular mechanics generalized Born surface area (MM-GBSA) were performed to explore the binding mechanism of three inhibitors (W8Y, W8V, and W8S) to HSP90. The dynamics analyses verified that the presence of inhibitors impacts the structural flexibility, correlated movements, and dynamics behavior of HSP90. The results of the MM-GBSA calculations suggest that the selection of GB models and empirical parameters has important influences on the predicted results and verify that van der Waals interactions are the main forces that determine inhibitor-HSP90 binding. The contributions of separate residues to the inhibitor-HSP90 binding process indicate that hydrogen-bonding interactions (HBIs) and hydrophobic interactions play important roles in HSP90-inhibitor identifications. Moreover, residues L34, N37, D40, A41, D79, I82, G83, M84, F124, and T171 are recognized as hot spots of inhibitor-HSP90 binding and provide significant target sites of for the design of drugs related to HSP90. This study aims to contribute to the development of efficient inhibitors that target HSP90 by providing an energy-based and theoretical foundation.
热休克蛋白 (HSP90) 一直是人类疾病治疗药物设计的重要靶标。探索 HSP90 的构象变化可以为开发针对 HSP90 的高效抑制剂提供有用信息。在这项工作中,进行了多次独立的全原子分子动力学 (AAMD) 模拟,然后计算了分子力学广义 Born 表面积 (MM-GBSA),以探索三种抑制剂 (W8Y、W8V 和 W8S) 与 HSP90 的结合机制。动力学分析验证了抑制剂的存在会影响 HSP90 的结构灵活性、相关运动和动力学行为。MM-GBSA 计算结果表明,GB 模型和经验参数的选择对预测结果有重要影响,并验证了范德华相互作用是决定抑制剂-HSP90 结合的主要力。单独残基对抑制剂-HSP90 结合过程的贡献表明,氢键相互作用 (HBIs) 和疏水相互作用在 HSP90-抑制剂识别中起着重要作用。此外,残基 L34、N37、D40、A41、D79、I82、G83、M84、F124 和 T171 被认为是抑制剂-HSP90 结合的热点,为 HSP90 相关药物的设计提供了重要的靶标。本研究旨在通过提供基于能量的理论基础,为开发针对 HSP90 的高效抑制剂做出贡献。