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A modular protein language modelling approach to immunogenicity prediction.

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Predicting neoantigen immunogenicity is crucial for personalized medicine. ImmugenX, a protein language model, improves CD8+ T-cell epitope immunogenicity prediction, outperforming existing methods and offering insights into model biases.

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Area of Science:

  • Computational biology
  • Immunoinformatics
  • Personalized medicine

Background:

  • Predicting neoantigen immunogenicity is vital for developing personalized cancer vaccines.
  • Limited training data and low reactivity rates pose significant challenges in this prediction task.

Purpose of the Study:

  • To introduce ImmugenX, a novel modular protein language modeling approach for predicting CD8+ T-cell epitope immunogenicity.
  • To evaluate ImmugenX's performance against state-of-the-art models in predicting pMHC interactions and immunogenicity.

Main Methods:

  • Developed ImmugenX, a modular framework with pMHC and optional TCR encoding modules.
  • Trained the pMHC encoding module on prediction tasks including binding affinity, eluted ligand prediction, and stability.
  • Utilized context-specific immunogenicity prediction head modules.

Main Results:

  • ImmugenX's encoding module demonstrated comparable or superior performance on pMHC binding affinity, eluted ligand prediction, and stability tasks.
  • ImmugenX significantly outperformed existing models in pMHC immunogenicity prediction (AUC=0.619, AP=0.514), achieving a 7% increase in average precision.
  • Integrating T-cell receptor (TCR) context further enhanced immunogenicity prediction performance.

Conclusions:

  • ImmugenX offers a robust and improved approach to neoantigen immunogenicity prediction for CD8+ epitopes.
  • The model's interpretability analysis identified weaknesses in current models and potential biases in public datasets.
  • ImmugenX advances the development of effective personalized immunotherapies.