Facts and Hopes in Using Omics to Advance Combined Immunotherapy Strategies

Ryan C Augustin1,2,3, Wesley L Cai2, Jason J Luke1,2

  • 1UPMC Hillman Cancer Center, Pittsburgh, Pennsylvania.

Insights

Immune checkpoint inhibitors (ICI) show promise in oncology, but durable benefits are limited. Advanced multi-omic and computational approaches are key to understanding resistance mechanisms and improving immunotherapies.

Area of Science:

  • Oncology
  • Immunotherapy
  • Computational Biology

Background:

  • Immune checkpoint inhibitors (ICI) have revolutionized cancer treatment.
  • Many patients lack durable responses to ICI, necessitating deeper understanding of resistance.

Purpose of the Study:

  • To explore advanced multi-omic technologies for high-resolution characterization of the tumor microenvironment (TME).
  • To identify mechanisms of resistance and predictors of benefit in patients treated with ICI.
  • To propose a framework for advancing combined immunotherapy strategies.

Main Methods:

  • Utilizing single-cell transcriptomics, proteomics, epigenomics, and T-cell receptor profiling.
  • Employing spatial sequencing and imaging platforms for enhanced data dimensionality.
  • Developing biologically interpretable machine learning models to integrate multi-omic data.

Main Results:

  • Current biomarker assessments have only partially uncovered ICI resistance mechanisms.
  • Advanced computational models can integrate high-resolution multi-omic data to identify resistance predictors.
  • High-resolution characterization of the TME is now feasible with multi-omic technologies.

Conclusions:

  • Accurate models of the tumor-immune interface are crucial for developing effective therapeutic strategies.
  • Machine learning integration of multi-omic data can identify resistance mechanisms and benefit predictors.
  • A framework combining in silico screening, functional validation, and biomarker assessment can advance combined immunotherapies.

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