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Salt Bridge in Ligand-Protein Complexes-Systematic Theoretical and Statistical Investigations

机译:配体蛋白复合物中的盐桥 - 系统的理论和统计调查

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摘要

Although the salt bridge is the strongest among all known noncovalent molecular interactions, no comprehensive studies have been conducted to date to examine its role and significance in drug design. Thus, a systematic study of the salt bridge in biological systems is reported herein, with a broad analysis of publicly available data from Protein Data Bank, DrugBank, ChEMBL, and GPCRdb. The results revealed the distance and angular preferences as well as privileged molecular motifs of salt bridges in ligand-receptor complexes, which could be used to design the strongest interactions. Moreover, using quantum chemical calculations at the MP2 level, the energetic, directionality, and spatial variabilities of salt bridges were investigated using simple model systems mimicking salt bridges in a biological environment. Additionally, natural orbitals for chemical valence (NOCV) combined with the extended-transition-state (ETS) bond-energy decomposition method (ETS-NOCV) were analyzed and indicated a strong covalent contribution to the salt bridge interaction. The present results could be useful for implementation in rational drug design protocols.
机译:虽然盐桥是所有已知的非共价分子相互作用中最强的,但迄今为止没有进行综合研究,以检查其在药物设计中的作用和重要性。因此,本文报道了生物系统中的盐桥的系统研究,并分析了来自蛋白质数据库,药物银行,ChemBL和GPCRDB的公共可用数据。结果揭示了距离和角度偏好以及配体 - 受体配合物中的盐桥的特权分子基质,其可用于设计最强的相互作用。此外,在MP2水平上使用量子化学计算,使用模拟生物环境中的盐桥的简单模型系统研究了盐桥的能量,方向性和空间可变性。另外,分析了化学价(NOCV)的天然轨道与延长过渡 - 状态(ETS)键 - 能量分解法(ETS-NOCV)结合,并表明对盐桥相互作用的强烈共价贡献。目前的结果可用于合理药物设计方案中的实施。

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