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Updated: Oct 28, 2025

Tractable In Vivo Reprogramming of Tumor Cells to Type 1 Conventional Dendritic Cell-like Cells
Published on: August 1, 2025
Mevalonate Blockade in Cancer Cells Triggers CLEC9A+ Dendritic Cell-Mediated Antitumor Immunity
Feifei Xu1, Zining Wang1, Hongxia Zhang1
1State Key Laboratory of Oncology in South China, Collaborative Innovation Center for Cancer Medicine, Sun Yat-sen University Cancer Center, Guangzhou, China.
Abstract:
Hyperactive mevalonate (MVA) metabolic activity is often observed in cancer cells, and blockade of this pathway inhibits tumor cell lipid synthesis and cell growth and enhances tumor immunogenicity. How tumor cell MVA metabolic blockade promotes antitumor immune responses, however, remains unclear. Here we show that inhibition of the MVA metabolic pathway in tumor cells elicits type 1 classical dendritic cells (cDC1)-mediated tumor recognition and antigen cross-presentation for antitumor immunity. Mechanistically, MVA blockade disrupted prenylation of the small GTPase Rac1 and induced cancer cell actin filament exposure, which was recognized by CLEC9A, a C-lectin receptor specifically expressed on cDC1s, in turn activating antitumor T cells. MVA pathway blockade or Rac1 knockdown in tumor cells induced CD8+ T-cell-mediated antitumor immunity in immunocompetent mice but not in Batf3 -/- mice lacking CLEC9A+ dendritic cells. These findings demonstrate tumor MVA metabolic blockade stimulates a cDC1 response through CLEC9A-mediated immune recognition of tumor cell cytoskeleton, illustrating a new immune surveillance mechanism by which dendritic cells monitor tumor metabolic dysregulation and providing insight into how MVA pathway inhibition may potentiate anticancer immunity. SIGNIFICANCE: These findings suggest that mevalonate blockade in cancer cells disrupts Rac1 prenylation to increase recognition and cross-presentation by conventional dendritic cells, suggesting this axis as a potential target for cancer immunotherapy.
Insights
Blocking the mevalonate pathway in cancer cells enhances antitumor immunity by enabling dendritic cells to recognize and present tumor antigens, activating T cells.
Area of Science:
- Immunology
- Metabolic pathways
- Cancer biology
Background:
- Hyperactive mevalonate (MVA) metabolism is common in cancer, inhibiting tumor growth and enhancing immunogenicity.
- The precise mechanisms by which MVA pathway blockade promotes antitumor immunity are not fully understood.
Purpose of the Study:
- To elucidate how blocking the MVA metabolic pathway in tumor cells stimulates antitumor immune responses.
Main Methods:
- Inhibition of the MVA metabolic pathway or Rac1 knockdown in tumor cells.
- Assessment of tumor recognition and antigen cross-presentation by dendritic cells.
- Evaluation of CD8+ T-cell-mediated antitumor immunity in immunocompetent and Batf3-/- mice.
Main Results:
- MVA pathway inhibition in tumor cells leads to type 1 classical dendritic cell (cDC1)-mediated tumor recognition and antigen cross-presentation.
- Mechanistically, MVA blockade disrupts Rac1 prenylation, exposing actin filaments recognized by CLEC9A on cDC1s, which activates antitumor T cells.
- MVA pathway blockade or Rac1 knockdown induced CD8+ T-cell-mediated immunity in immunocompetent mice but not in mice lacking cDC1s.
Conclusions:
- Tumor MVA metabolic blockade activates a cDC1 response via CLEC9A-mediated recognition of tumor cytoskeleton, revealing a novel immune surveillance mechanism.
- Dendritic cells monitor tumor metabolic dysregulation, and MVA pathway inhibition can be leveraged to potentiate anticancer immunity.
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