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Reinforcement learning for systems pharmacology-oriented and personalized drug design

Authors :
Ryan K. Tan
Yang Liu
Lei Xie
Source :
Expert Opinion on Drug Discovery. 17:849-863
Publication Year :
2022
Publisher :
Informa UK Limited, 2022.

Abstract

Many multi-genic systemic diseases such as neurological disorders, inflammatory diseases, and the majority of cancers do not have effective treatments yet. Reinforcement learning powered systems pharmacology is a potentially effective approach to designing personalized therapies for untreatable complex diseases.In this survey, state-of-the-art reinforcement learning methods and their latest applications to drug design are reviewed. The challenges on harnessing reinforcement learning for systems pharmacology and personalized medicine are discussed. Potential solutions to overcome the challenges are proposed.In spite of successful application of advanced reinforcement learning techniques to target-based drug discovery, new reinforcement learning strategies are needed to address systems pharmacology-oriented personalized

Details

ISSN :
1746045X and 17460441
Volume :
17
Database :
OpenAIRE
Journal :
Expert Opinion on Drug Discovery
Accession number :
edsair.doi.dedup.....fd23e4c0c225d8fb04110b4ed3bf2358