对接(动物)
化学
化学空间
药物发现
组合化学
分子
小分子
结合位点
构象集合
水准点(测量)
计算生物学
装订袋
立体化学
寻找对接的构象空间
纳米技术
虚拟筛选
生物系统
蛋白质-配体对接
分子构象
计算机科学
分子模型
活动站点
采样(信号处理)
计算化学
作者
Jacob Robson‐Tull,João P. G. L. M. Rodrigues
标识
DOI:10.1021/acs.jmedchem.5c03392
摘要
Macrocycles are an increasingly relevant class of therapeutics, but their size and highly constrained conformational space poses unique challenges to computational modeling. Existing modeling protocols struggle to accurately sample macrocycle bioactive conformations and predict their binding mode to receptors of interest, hindering structure-based drug discovery campaigns. To address these limitations, we developed a new flexible macrocycle docking protocol based on existing Schrödinger technologies for macrocycle sampling and small molecule docking. To benchmark its accuracy, we collected 240 diverse receptor-macrocycle systems, expanding and improving over previously published data sets. Our results show that our method improves significantly over existing docking tools, recapitulating the receptor-bound structure in the top 2 ranked poses for 82% of cases, including several clinically relevant compounds. Finally, we discuss the limitations of our method and the remaining challenges of macrocycle modeling, such as induced-fit effects, strain, and the accurate placement of chemical decorations around the macrocycle core.
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