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      Drug sensitivity prediction from cell line-based pharmacogenomics data: guidelines for developing machine learning models.

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          Abstract

          The goal of precision oncology is to tailor treatment for patients individually using the genomic profile of their tumors. Pharmacogenomics datasets such as cancer cell lines are among the most valuable resources for drug sensitivity prediction, a crucial task of precision oncology. Machine learning methods have been employed to predict drug sensitivity based on the multiple omics data available for large panels of cancer cell lines. However, there are no comprehensive guidelines on how to properly train and validate such machine learning models for drug sensitivity prediction. In this paper, we introduce a set of guidelines for different aspects of training gene expression-based predictors using cell line datasets. These guidelines provide extensive analysis of the generalization of drug sensitivity predictors and challenge many current practices in the community including the choice of training dataset and measure of drug sensitivity. The application of these guidelines in future studies will enable the development of more robust preclinical biomarkers.

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          Author and article information

          Journal
          Brief Bioinform
          Briefings in bioinformatics
          Oxford University Press (OUP)
          1477-4054
          1467-5463
          November 05 2021
          : 22
          : 6
          Affiliations
          [1 ] School of Computing Science, Simon Fraser University, Burnaby, British Columbia, Canada.
          [2 ] Vancouver Prostate Center, Vancouver, British Columbia, Canada.
          [3 ] Princess Margaret Cancer Centre, Toronto, Ontario, Canada.
          [4 ] Department of Medical Biophysics, University of Toronto, Toronto, Ontario, Canada.
          [5 ] University of Toronto, Toronto, Ontario, Canada.
          [6 ] Ontario Institute for Cancer Research, Toronto, Ontario, Canada.
          Article
          6348324
          10.1093/bib/bbab294
          8575017
          34382071
          09be66e9-c2ff-4a0c-9ec9-ae163f2e19ac
          © The Author(s) 2021. Published by Oxford University Press. All rights reserved. For Permissions, please email: journals.permissions@oup.com.
          History

          pharmacogenomics,machine learning,drug response prediction

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