School of Basic Science, China Pharmaceutical University , No. 24 Tongjiaxiang, Nanjing 210009, P. R. China.
State Key Laboratory of Lead Compound Research, WuXi AppTec , 288 Fute Zhong Road, Waigaoqiao Free Trade Zone, Shanghai 200131, China.
J Chem Inf Model. 2015 Oct 26;55(10):2138-53. doi: 10.1021/acs.jcim.5b00177. Epub 2015 Oct 1.
Intermolecular S···O interactions are very common and are important in biological systems, but until recently, the presence of these contacts in protein-ligand systems largely depended on serendipitous discovery instead of rational design. Here we provide insight into the phenomenon of intermolecular S···O contacts by focusing on three sulfur-containing aromatic rings. Quantum mechanics is employed to characterize the strength and directionality of the S···O interactions and to determine their energy dependence on their geometric parameters. Protein Data Bank mining is performed to systematically determine the occurrence and geometry of intermolecular S···O interactions, and several representative examples are discussed. Three typical cases are investigated using a combined quantum mechanics/molecular mechanics approach to demonstrate the potential of these interactions in improving binding affinities and physiochemical properties. Overall, our work elucidates the structures and energy features of intermolecular S···O interactions and addresses their use in molecular design.
分子间 S···O 相互作用非常普遍,在生物系统中也很重要,但直到最近,这些相互作用在蛋白质-配体系统中的存在主要还是依赖于偶然发现,而不是合理设计。在这里,我们通过关注三个含硫芳环来深入了解分子间 S···O 接触的现象。我们采用量子力学来描述 S···O 相互作用的强度和方向性,并确定它们的能量对其几何参数的依赖性。我们还进行了蛋白质数据库挖掘,以系统地确定分子间 S···O 相互作用的发生和几何形状,并讨论了几个有代表性的例子。我们使用量子力学/分子力学相结合的方法研究了三个典型案例,以证明这些相互作用在提高结合亲和力和物理化学性质方面的潜力。总的来说,我们的工作阐明了分子间 S···O 相互作用的结构和能量特征,并探讨了它们在分子设计中的应用。