Graph attention network predicts drug-gene associations of matrix metalloproteinases 9-based host modulation in

Deepavalli Arumuganainar1, Raghavendra Vamsi Anegundi1, P R Ganesh2

  • 1Department of Periodontics, Saveetha Dental College, SIMATS, Saveetha University, Chennai, Tamil Nadu, India.

Abstract

Insights

This study used a Graph Attention Network (GAT) to predict drug-gene associations for MMP-9, identifying key drug targets for periodontitis treatment. The model achieved 80% accuracy, paving the way for precision medicine approaches.

Area of Science:

  • Biochemistry and Bioinformatics
  • Genomics and Drug Discovery

Background:

  • Matrix metalloproteinases (MMPs), particularly MMP-9, play a critical role in periodontal tissue degradation.
  • Understanding drug-gene interactions is vital for developing targeted therapies in periodontitis.

Purpose of the Study:

  • To utilize a Graph Attention Network (GAT) for predicting drug-gene associations related to MMP-9.
  • To identify potential therapeutic targets for host modulation in periodontitis.

Main Methods:

  • Collected and cleaned data on 1898 drug-gene interactions involving MMP-9.
  • Constructed a network graph and applied a three-layer GAT model for analysis.
  • Utilized Cytoscape and Cytohubba for network visualization and hub identification.

Main Results:

  • The GAT model achieved 80% classification accuracy and an F1 score of 0.8861.
  • Identified top drug-gene hubs including quercetin, luteolin, and MMP-9 itself.
  • The model demonstrated stable training despite dataset imbalance.

Conclusions:

  • The GAT approach effectively identifies potential drug targets for MMP-9.
  • Findings contribute to advancing MMP-9 biology and developing novel therapeutic strategies for periodontitis.
  • This research supports precision medicine by optimizing treatment outcomes.

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