A gut microbial signature for combination immune checkpoint blockade across cancer types

Ashray Gunjur1,2, Yan Shao3, Timothy Rozday3

  • 1Host-Microbiota Interactions Laboratory, Wellcome Sanger Institute, Hinxton, UK. ag35@sanger.ac.uk.

Nature Medicine
|March 1, 2024
PubMed

Insights

Strain-level gut microbiome analysis improves prediction of cancer immunotherapy response. Tailoring microbiome diagnostics to specific immune checkpoint blockade regimens, not cancer type, enhances biomarker validity across diverse patient cohorts.

Area of Science:

  • Oncology
  • Microbiome Research
  • Immunotherapy

Background:

  • Immune checkpoint blockade (ICB) shows variable patient responses in cancer treatment.
  • Gut microbiota composition is linked to ICB response, but generalizable biomarkers are elusive.
  • Previous studies focused on species-level microbial abundance, overlooking strain-specific functional variations.

Approach:

  • Deep shotgun metagenomic sequencing of fecal samples from 106 patients with rare cancers treated with combination ICB.
  • Developed machine learning models using strain-resolved microbial abundances to predict ICB response and progression-free survival.
  • Conducted a meta-analysis of 364 gut metagenomes from six comparable studies for validation.

Key Points:

  • Strain-resolved microbial abundances significantly improved machine learning predictions of ICB response and survival compared to species-level data or clinical factors.
  • Strain-response signatures demonstrated cross-cancer and cross-country validity when ICB regimens were concordant (anti-PD-1 or combination anti-PD-1/anti-CTLA-4).
  • Biomarker validity was dependent on the specific ICB treatment regimen, not the cancer type.

Conclusions:

  • Microbiome-based biomarkers for ICB response are most effective when analyzed at the strain level.
  • Future development of gut microbiome diagnostics and therapeutics for immunotherapy should be tailored to ICB treatment regimens.
  • This approach offers a more precise strategy for personalizing cancer immunotherapy based on individual gut microbial profiles.

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