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Published on: August 2, 2024
Mannose Enhances Immunotherapy Efficacy in Ovarian Cancer by Modulating Gut Microbial Metabolites
Chen Zhang1, Yiying Wang1, Mengdi He1
1Shanghai Key Laboratory of Female Reproductive Endocrine Related Diseases, Department of Gynecologic Oncology, Obstetrics and Gynecology Hospital, Fudan University, Shanghai, China.
Abstract:
The gut microbiome significantly influences the effectiveness of immune checkpoint blockade therapy. However, its clinical application is hindered by the absence of cost-effective production methods. In this study, we demonstrated that oral mannose supplementation inhibits ovarian tumor growth in immunocompetent mice through the enrichment of Faecalibaculum rodentium (F. rodentium). Administration of F. rodentium not only suppressed tumor progression but also enhanced antitumor immune responses. Mannose supplementation fostered an immune stimulatory tumor microenvironment, characterized by the expansion and differentiation of progenitor-exhausted CD8+ T cells (Tpex). Metabolomics analysis identified propionate and butyrate as critical metabolites driving the mannose-mediated tumor-suppressive effects, which was validated in vivo. Mechanistically, propionate and butyrate enhanced histone acetylation to promote Tpex-cell expansion. Moreover, a mannose-related gene signature was associated with favorable response to immune checkpoint blockade therapy across multiple cancer types. Supplementation with mannose also improved the efficacy of anti-PD-1 therapy and PARP inhibitor treatment. These findings highlight the role of F. rodentium-derived metabolites propionate and butyrate as key stimulators of Tpex-cell expansion, thereby activating antitumor immune responses. This underscores the therapeutic potential of mannose supplementation in enhancing cancer immunotherapy outcomes in high-grade serous ovarian cancer.
Significance:
Alterations to the gut microbiome induced by mannose engender an immune stimulatory tumor microenvironment responsive to immunotherapy, suggesting that mannose may be an effective and safe adjuvant therapy for stimulating immunotherapy sensitivity.
Insights
Oral mannose supplementation boosts anti-tumor immunity by enriching Faecalibaculum rodentium (F. rodentium). This enhances immune checkpoint blockade (ICB) therapy and shows potential for ovarian cancer treatment.
Area of Science:
- Immunology
- Microbiome research
- Cancer therapy
Background:
- Gut microbiome impacts immune checkpoint blockade (ICB) therapy effectiveness.
- Limited cost-effective methods hinder clinical application of microbiome-based therapies.
Purpose of the Study:
- To investigate the anti-tumor effects of oral mannose supplementation.
- To explore the role of Faecalibaculum rodentium (F. rodentium) and its metabolites in cancer immunotherapy.
- To assess mannose's potential to enhance ICB therapy in ovarian cancer.
Main Methods:
- Oral mannose supplementation in immunocompetent mice with ovarian tumors.
- Administration of F. rodentium and analysis of tumor progression.
- Immune cell profiling, focusing on progenitor exhausted CD8+ T cells (Tpex).
- Metabolomics analysis to identify key metabolites.
- Validation of metabolite effects in vivo.
- Analysis of a mannose-related gene signature in relation to ICB therapy response.
Main Results:
- Mannose supplementation inhibited ovarian tumor growth by enriching F. rodentium.
- F. rodentium administration suppressed tumor progression and enhanced anti-tumor immunity.
- Mannose promoted an immune-stimulatory tumor microenvironment with expanded Tpex cells.
- Propionate and butyrate were identified as key metabolites mediating mannose's effects.
- These metabolites enhanced histone acetylation, promoting Tpex cell expansion.
- A mannose-related gene signature correlated with better ICB response across cancers.
- Mannose improved anti-PD-1 and PARP inhibitor (PARPi) efficacy.
Conclusions:
- F. rodentium-derived propionate and butyrate stimulate Tpex cell expansion, activating anti-tumor immunity.
- Mannose supplementation represents a promising therapeutic strategy for enhancing cancer immunotherapy, particularly in high-grade serous ovarian cancer.

