Performance of Machine Learning Algorithms for Qualitative and Quantitative Prediction Drug Blockade of hERG1 channel

Soren Wacker1,2, Sergei Yu Noskov1

  • 1Centre for Molecular Simulation, Department of Biological Sciences, University of Calgary, 2500 University Drive, Calgary, AB, Canada, T2N 1N4.

Insights

Machine learning models accurately predict drug-induced Torsades de Pointes (TdP) by analyzing hERG channel blockade. This computational platform offers a scalable solution for drug safety screening and development.

Area of Science:

  • Pharmacology and Computational Chemistry
  • Drug Discovery and Development
  • Cardiovascular Toxicology

Background:

  • Drug-induced abnormal heart rhythms, such as Torsades de Pointes (TdP), pose a significant lethal risk.
  • Blockade of the hERG potassium channel by various drugs, including novel anti-arrhythmics like ivabradine, can lead to TdP.
  • Current drug design and screening methods have limitations in predicting complex drug interactions and cardiotoxicity.

Purpose of the Study:

  • To develop and validate a machine learning (ML) platform for predicting drug-induced Torsades de Pointes (TdP).
  • To assess the performance of novel ML algorithms in determining IC50 values for hERG channel blockade.
  • To create a scalable computational framework for enhanced drug safety assessment.

Main Methods:

  • Utilized the ChEMBL database to construct quantitative structure-activity relationship (QSAR) models.
  • Developed a computational platform integrating various ML workflows.
  • Employed the eXtreme gradient boosting (XGBoost) algorithm for predictive modeling.
  • Compared ML-based IC50 predictions with automated patch clamp system data for hERG blocking and non-blocking drugs.

Main Results:

  • The ML platform with XGBoost demonstrated high predictive power for hERG blockade, achieving a coefficient of determination (R²) of up to ~0.8 for pIC50 values.
  • The XGBoost algorithm surpassed other metrics and traditional QSAR or molecular modeling techniques in accuracy.
  • The developed platform shows excellent sensitivity and predictive performance, comparable to industry gold standards.

Conclusions:

  • The ML-based computational platform provides a rapid and accurate method for assessing drug-induced cardiotoxicity.
  • This approach addresses the need for improved drug screening methods to prevent TdP.
  • The scalable framework has the potential to integrate with high-throughput screening and synthetic biology for accelerated drug development.

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