Microbial Metabolic Pathways Guide Response to Immune Checkpoint Blockade Therapy

Journal Article (2026)
Author(s)

Iris L. Mimpen (Netherlands Cancer Institute)

Thomas W. Battaglia (Netherlands Cancer Institute)

Miguel Parra-Martinez (Netherlands Cancer Institute)

Catherine Toner-Bartelds (Netherlands Cancer Institute)

Laurien J. Zeverijn (Netherlands Cancer Institute)

Birgit S. Geurts (Netherlands Cancer Institute)

Karlijn Verkerk (Netherlands Cancer Institute)

Lodewyk F.A. Wessels (Netherlands Cancer Institute, TU Delft - Pattern Recognition and Bioinformatics)

Emile E. Voest (Netherlands Cancer Institute)

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DOI related publication
https://doi.org/10.1158/2159-8290.CD-24-1669 Final published version
More Info
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Publication Year
2026
Language
English
Journal title
Cancer discovery
Issue number
1
Volume number
16
Pages (from-to)
95-113
Downloads counter
24

Abstract

Studies have identified a link between specific microbiome-derived bacteria and immune checkpoint blockade (ICB) efficacy. However, these species lack consistency across studies, and their immunomodulatory mechanisms remain elusive. To understand the influence of the microbiome on ICB response, we studied its functional capacity. Using pan-cancer metagenomics data from ICB-treated patients, we showed that community-level metabolic pathways are stable across individuals, making them suitable for predicting ICB response. We identified several microbial metabolic processes significantly associated with response, including the methylerythritol 4-phosphate (MEP) pathway, which was associated with response and induced Vδ2 T cell–mediated antitumor responses in patient-derived tumor organoids. In contrast, riboflavin synthesis was associated with ICB resistance, and its intermediates induced mucosal-associated invariant T (MAIT) cell–mediated immune suppression. Moreover, gut metabolomics revealed that high riboflavin levels were linked to worse survival in patients with abundant intratumoral MAIT cells. Collectively, our results highlight the relevance of metabolite-mediated microbiome–immune cell cross-talk.