A Machine Learning Method for Drug Combination Prediction.

Front Genet

Hubei Key Laboratory of Agricultural Bioinformatics, College of Informatics, Huazhong Agricultural University, Wuhan, China.

Published: August 2020

AI Article Synopsis

  • Drug combination research faces challenges due to the high costs of experimental methodologies, leading to a reliance on computational methods that often focus solely on molecular structure.
  • The study introduces a more robust approach by integrating diverse drug characteristics and employing a neighbor recommender method with ensemble learning algorithms, achieving a high accuracy of 0.964 AUC.
  • The new ensemble models outperformed traditional machine learning techniques and successfully identified 7 potential drug combinations for paclitaxel, with 2 of them showing promising effects in verification tests.

Article Abstract

Drug combination is now a hot research topic in the pharmaceutical industry, but experiment-based methodologies are extremely costly in time and money. Many computational methods have been proposed to address these problems by starting from existing drug combinations. However, in most cases, only molecular structure information is included, which covers too limited a set of drug characteristics to efficiently screen drug combinations. Here, we integrated similarity-based multifeature drug data to improve the prediction accuracy by using the neighbor recommender method combined with ensemble learning algorithms. By conducting feature assessment analysis, we selected the most useful drug features and achieved 0.964 AUC in the ensemble models. The comparison results showed that the ensemble models outperform traditional machine learning algorithms such as support vector machine (SVM), naïve Bayes (NB), and logistic regression (GLM). Furthermore, we predicted 7 candidate drug combinations for a specific drug, paclitaxel, and successfully verified that the two of the predicted combinations have promising effects.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7477631PMC
http://dx.doi.org/10.3389/fgene.2020.01000DOI Listing

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