Gene-centric multi-omics integration with convolutional encoders for cancer drug response prediction

Munhwan Lee1, Pil-Jong Kim1, Hyunwhan Joe1

  • 1Biomedical Knowledge Engineering Lab., Seoul National University, 1 Gwanak-ro, Seoul, 08826, Republic of Korea.

Abstract

Insights

Tumor heterogeneity impacts cancer drug efficacy. A new gene-centric multi-channel (GCMC) architecture integrates multi-omics data to predict drug response, improving accuracy across diverse cancer models.

Area of Science:

  • Computational biology
  • Genomics
  • Pharmacogenomics

Background:

  • Tumor heterogeneity, encompassing genetic and transcriptomic variations, complicates anticancer drug efficacy and leads to varied patient responses.
  • Multi-omics data integration offers a powerful approach for developing in silico models to better understand biological systems and predict treatment outcomes.

Purpose of the Study:

  • To propose and evaluate a novel gene-centric multi-channel (GCMC) architecture for integrating multi-omics data to predict cancer drug response.
  • To assess the performance of GCMC against baseline models across various cancer datasets.

Main Methods:

  • Developed a gene-centric multi-channel (GCMC) architecture that transforms multi-omics profiles into a 3D tensor.
  • Employed convolutional encoders within GCMC to capture gene-specific multi-omics features for drug response prediction.

Main Results:

  • GCMC outperformed baseline models in over 75% of 265 drugs from the Genomics of Drug Sensitivity in Cancer (GDSC) cell line dataset.
  • Achieved superior performance (AUPR and AUC) on The Cancer Genome Atlas (TCGA) and patient-derived xenografts (PDX) datasets, demonstrating clinical applicability.
  • Analysis revealed GCMC's flexibility in incorporating multi-omics profiles to enhance drug-specific prediction performance.

Conclusions:

  • The GCMC architecture effectively integrates multi-omics data in a gene-centric manner to improve cancer drug response prediction.
  • GCMC demonstrates enhanced performance and feature extraction capabilities, offering a promising tool for precision oncology.

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