Systemic short chain fatty acids limit antitumor effect of CTLA-4 blockade in hosts with cancer.
Clélia CoutzacJean-Mehdi JouniauxAngelo PaciJulien SchmidtDomenico MallardoAtmane SeckVahe AsvatourianLydie CassardPatrick SaulnierLudovic LacroixPaul-Louis WoertherAurore VozyMarie NaigeonLaetitia Nebot-BralMélanie DesboisEster SimeoneChristine MateusLisa BoselliJonathan GrivelEmilie SoularuePatricia LepageFranck CarbonnelPaolo Antonio AsciertoCaroline RobertNathalie ChaputPublished in: Nature communications (2020)
Gut microbiota composition influences the clinical benefit of immune checkpoints in patients with advanced cancer but mechanisms underlying this relationship remain unclear. Molecular mechanism whereby gut microbiota influences immune responses is mainly assigned to gut microbial metabolites. Short-chain fatty acids (SCFA) are produced in large amounts in the colon through bacterial fermentation of dietary fiber. We evaluate in mice and in patients treated with anti-CTLA-4 blocking mAbs whether SCFA levels is related to clinical outcome. High blood butyrate and propionate levels are associated with resistance to CTLA-4 blockade and higher proportion of Treg cells. In mice, butyrate restrains anti-CTLA-4-induced up-regulation of CD80/CD86 on dendritic cells and ICOS on T cells, accumulation of tumor-specific T cells and memory T cells. In patients, high blood butyrate levels moderate ipilimumab-induced accumulation of memory and ICOS + CD4 + T cells and IL-2 impregnation. Altogether, these results suggest that SCFA limits anti-CTLA-4 activity.
Keyphrases
- dendritic cells
- fatty acid
- immune response
- advanced cancer
- high glucose
- end stage renal disease
- palliative care
- diabetic rats
- ejection fraction
- high fat diet induced
- working memory
- newly diagnosed
- chronic kidney disease
- drug induced
- induced apoptosis
- microbial community
- regulatory t cells
- prognostic factors
- papillary thyroid
- endothelial cells
- peritoneal dialysis
- adipose tissue
- cell cycle arrest
- metabolic syndrome
- signaling pathway
- high intensity
- lactic acid
- endoplasmic reticulum stress
- patient reported
- saccharomyces cerevisiae
- inflammatory response