An artificial intelligence accelerated virtual screening platform for drug discovery

Author:

Zhou GuangfengORCID,Rusnac Domnita-Valeria,Park HahnbeomORCID,Canzani Daniele,Nguyen Hai Minh,Stewart LanceORCID,Bush Matthew F.ORCID,Nguyen Phuong Tran,Wulff HeikeORCID,Yarov-Yarovoy VladimirORCID,Zheng NingORCID,DiMaio FrankORCID

Abstract

AbstractStructure-based virtual screening is a key tool in early drug discovery, with growing interest in the screening of multi-billion chemical compound libraries. However, the success of virtual screening crucially depends on the accuracy of the binding pose and binding affinity predicted by computational docking. Here we develop a highly accurate structure-based virtual screen method, RosettaVS, for predicting docking poses and binding affinities. Our approach outperforms other state-of-the-art methods on a wide range of benchmarks, partially due to our ability to model receptor flexibility. We incorporate this into a new open-source artificial intelligence accelerated virtual screening platform for drug discovery. Using this platform, we screen multi-billion compound libraries against two unrelated targets, a ubiquitin ligase target KLHDC2 and the human voltage-gated sodium channel NaV1.7. For both targets, we discover hit compounds, including seven hits (14% hit rate) to KLHDC2 and four hits (44% hit rate) to NaV1.7, all with single digit micromolar binding affinities. Screening in both cases is completed in less than seven days. Finally, a high resolution X-ray crystallographic structure validates the predicted docking pose for the KLHDC2 ligand complex, demonstrating the effectiveness of our method in lead discovery.

Funder

United States Department of Defense | Defense Advanced Research Projects Agency

United States Department of Defense | Defense Threat Reduction Agency

Howard Hughes Medical Institute

U.S. Department of Health & Human Services | NIH | National Institute of General Medical Sciences

National Research Foundation of Korea

National Science Foundation

Washington State funding

Publisher

Springer Science and Business Media LLC

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