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Related Experiment Video

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A Protocol for Using Gene Set Enrichment Analysis to Identify the Appropriate Animal Model for Translational Research
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SaintGSE: Transformer-based efficient and explainable gene set enrichment analysis.

Min-Seung Jeon1, Jiho Nam2, Minseok Lee1

  • 1Department of Life Science, Chung-Ang University, Seoul 06974, South Korea.

Osteoarthritis and Cartilage
|April 18, 2026
PubMed
Summary

We developed SaintGSE, an explainable AI model for predicting gene-pathway associations from gene expression data. This tool aids in discovering therapeutic targets for diseases like osteoarthritis (OA) by analyzing differentially expressed gene signatures.

Keywords:
Natural productOsteoarthritis (OA)Self-Attention and Intersample Attention Transformer (SAINT)Signaling pathwayeXplainable Artificial Intelligence (XAI)

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Area of Science:

  • Bioinformatics
  • Computational Biology
  • Systems Biology

Background:

  • Gene set enrichment analysis (GSEA) is crucial for interpreting genome-wide expression data.
  • Current pathway inference methods face limitations in data scarcity, model compatibility, and interpretability.
  • Discovering therapeutic targets for complex diseases like osteoarthritis requires efficient and explainable models.

Purpose of the Study:

  • To develop SaintGSE, an efficient and explainable model for predicting gene-pathway associations.
  • To leverage a large curated differentially expressed gene (DEG) signature compendium for model training.
  • To support therapeutic target discovery in complex diseases, including osteoarthritis.

Main Methods:

  • Developed SaintGSE, a supervised prediction framework using an autoencoder and the SAINT transformer model.
  • Trained the model on a public DEG compendium with pathway labels from EnrichR.
  • Utilized Integrated Gradients (IG) for model interpretability and driver gene prioritization.
  • Conducted experimental validation in mouse and human chondrocyte cultures and in vivo OA models.

Main Results:

  • SaintGSE identified key OA-related pathways (NF-κB, p38) potentially modulated by Senna obtusifolia extract.
  • In vitro, the extract reduced OA catabolic factors (Mmp3, Mmp13, Cox2).
  • In vivo, the extract significantly reduced cartilage damage in OA mouse models.
  • IG-based driver genes provided condition-specific candidates for pathway predictions.

Conclusions:

  • SaintGSE provides scalable and explainable pathway prediction from DEG signatures.
  • The model facilitates mechanism- and target-oriented follow-up studies.
  • SaintGSE is valuable for disease research and drug candidate screening.