Journal article
Deep-PK: deep learning for small molecule pharmacokinetic and toxicity prediction
Y Myung, AGC De Sá, DB Ascher
Nucleic Acids Research | Published : 2024
DOI: 10.1093/nar/gkae254
Abstract
Evaluating pharmacokinetic properties of small molecules is considered a key feature in most drug development and high-throughput screening processes. Generally, pharmacokinetics, which represent the fate of drugs in the human body, are described from four perspectives: absorption, distribution, metabolism and excretion - all of which are closely related to a fifth perspective, toxicity (ADMET). Since obtaining ADMET data from in vitro, in vivo or pre-clinical stages is time consuming and expensive, many efforts have been made to predict ADMET properties via computational approaches. However, the majority of available methods are limited in their ability to provide pharmacokinetics and toxic..
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Awarded by State Government of Victoria
Funding Acknowledgements
National Health and Medical Research Council [GNT1174405 to D.B.A.]; Victorian Government (in part). Funding for open access charge: National Health and Medical Research Council.