Foxp3 confers long-term efficacy of chimeric antigen receptor-T cells via metabolic reprogramming.

Niu, Congyi; Wei, Huan; Pan, Xuanxuan; Wang, Yuedi; Song, Huan; Li, Congwen; Qie, Jingbo; Qian, Jiawen et al. · Cell Metab · 2025

basic_science · Level V

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Abstract

The tumor microenvironment, characterized by low oxygen tension and scarce nutrients, impairs chimeric antigen receptor (CAR)-T cell metabolism, leading to T cell exhaustion and dysfunction. Notably, Foxp3 confers a metabolic advantage to regulatory T cells under such restrictive conditions. Exploiting this property, we generated CAR-T<sub>Foxp3</sub> cells by co-expressing Foxp3 with a third-generation CAR construct. The CAR-T<sub>Foxp3</sub> cells exhibited distinct metabolic reprogramming, marked by downregulated aerobic glycolysis and oxidative phosphorylation coupled with upregulated lipid metabolism. This metabolic shift was driven by Foxp3's interaction with dynamin-related protein 1. Crucially, CAR-T<sub>Foxp3</sub> cells did not acquire regulatory T cell immunosuppressive functions but instead demonstrated enhanced antitumor potency and reduced expression of exhaustion markers via Foxp3-mediated adaptation. The potent antitumor effect and absence of immunosuppression were confirmed in a humanized immune system mouse model. Our findings establish a metabolic reprogramming-based strategy to enhance CAR-T cell adaptability within the hostile tumor microenvironment while preserving therapeutic efficacy.

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