Deep learning methods for drug response prediction in cancer: Predominant and emerging trends.

deep learning drug response prediction drug sensitivity multiomics neural networks personalized medicine precision medicine precision oncology

Journal

Frontiers in medicine
ISSN: 2296-858X
Titre abrégé: Front Med (Lausanne)
Pays: Switzerland
ID NLM: 101648047

Informations de publication

Date de publication:
2023
Historique:
received: 01 11 2022
accepted: 23 01 2023
entrez: 6 3 2023
pubmed: 7 3 2023
medline: 7 3 2023
Statut: epublish

Résumé

Cancer claims millions of lives yearly worldwide. While many therapies have been made available in recent years, by in large cancer remains unsolved. Exploiting computational predictive models to study and treat cancer holds great promise in improving drug development and personalized design of treatment plans, ultimately suppressing tumors, alleviating suffering, and prolonging lives of patients. A wave of recent papers demonstrates promising results in predicting cancer response to drug treatments while utilizing deep learning methods. These papers investigate diverse data representations, neural network architectures, learning methodologies, and evaluations schemes. However, deciphering promising predominant and emerging trends is difficult due to the variety of explored methods and lack of standardized framework for comparing drug response prediction models. To obtain a comprehensive landscape of deep learning methods, we conducted an extensive search and analysis of deep learning models that predict the response to single drug treatments. A total of 61 deep learning-based models have been curated, and summary plots were generated. Based on the analysis, observable patterns and prevalence of methods have been revealed. This review allows to better understand the current state of the field and identify major challenges and promising solution paths.

Identifiants

pubmed: 36873878
doi: 10.3389/fmed.2023.1086097
pmc: PMC9975164
doi:

Types de publication

Journal Article Review

Langues

eng

Pagination

1086097

Subventions

Organisme : NCI NIH HHS
ID : 75N91019D00024
Pays : United States

Informations de copyright

Copyright © 2023 Partin, Brettin, Zhu, Narykov, Clyde, Overbeek and Stevens.

Déclaration de conflit d'intérêts

The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.

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Auteurs

Alexander Partin (A)

Division of Data Science and Learning, Argonne National Laboratory, Lemont, IL, United States.

Thomas S Brettin (TS)

Division of Data Science and Learning, Argonne National Laboratory, Lemont, IL, United States.

Yitan Zhu (Y)

Division of Data Science and Learning, Argonne National Laboratory, Lemont, IL, United States.

Oleksandr Narykov (O)

Division of Data Science and Learning, Argonne National Laboratory, Lemont, IL, United States.

Austin Clyde (A)

Division of Data Science and Learning, Argonne National Laboratory, Lemont, IL, United States.

Jamie Overbeek (J)

Division of Data Science and Learning, Argonne National Laboratory, Lemont, IL, United States.

Rick L Stevens (RL)

Division of Data Science and Learning, Argonne National Laboratory, Lemont, IL, United States.
Department of Computer Science, The University of Chicago, Chicago, IL, United States.

Classifications MeSH