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Mitochondrial dysfunction promotes the transition of precursor to terminally exhausted T cells through HIF-1α-mediated glycolytic reprogramming

Hao Wu, Xiufeng Zhao, Sophia M. Hochrein, Miriam Eckstein, Gabriela Farias Gubert, Konrad Knöpper, Ana Maria Mansilla, Arman Öner, Rémi Doucet-Ladevèze, Werner Schmitz, Bart Ghesquière, Sebastian Theurich, Jan Dudek, Georg Gasteiger, Alma Zernecke

Nature Communications · 2023 · ▲ 264 citations

Abstract

T cell exhaustion is a hallmark of cancer and persistent infections, marked by inhibitory receptor upregulation, diminished cytokine secretion, and impaired cytolytic activity. Terminally exhausted T cells are steadily replenished by a precursor population (Tpex), but the metabolic principles governing Tpex maintenance and the regulatory circuits that control their exhaustion remain incompletely understood. Using a combination of gene-deficient mice, single-cell transcriptomics, and metabolomic analyses, we show that mitochondrial insufficiency is a cell-intrinsic trigger that initiates the functional exhaustion of T cells. At the molecular level, we find that mitochondrial dysfunction(definition) causes redox stress, which inhibits the proteasomal degradation of hypoxia-inducible factor 1α (HIF-1α) and promotes the transcriptional and metabolic reprogramming of Tpex cells into terminally exhausted T cells. Our findings also bear clinical significance, as metabolic engineering of chimeric antigen receptor (CAR) T cells is a promising strategy to enhance the stemness and functionality of Tpex cells for cancer immunotherapy.

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Provenance

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OpenAlex
DOI
10.1038/s41467-023-42634-3
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2026-06-07 MST

Cite this

APA
Wu, H., Zhao, X., Hochrein, S.M., Eckstein, M., Gubert, G.F., Knöpper, K., Mansilla, A.M., Öner, A., Doucet-Ladevèze, R., Schmitz, W., Ghesquière, B., Theurich, S., Dudek, J., Gasteiger, G., Zernecke, A., Kobold, S., Kastenmüller, W., &amp; Vaeth, M. (2023). Mitochondrial dysfunction promotes the transition of precursor to terminally exhausted T cells through HIF-1α-mediated glycolytic reprogramming. <em>Nature Communications</em>. https://doi.org/10.1038/s41467-023-42634-3
Vancouver
Wu H, Zhao X, Hochrein SM, Eckstein M, Gubert GF, Knöpper K, et al. Mitochondrial dysfunction promotes the transition of precursor to terminally exhausted T cells through HIF-1α-mediated glycolytic reprogramming. Nature Communications. 2023. doi:10.1038/s41467-023-42634-3.
BibTeX
@article{hao2023Mitoch, title = {Mitochondrial dysfunction promotes the transition of precursor to terminally exhausted T cells through HIF-1α-mediated glycolytic reprogramming}, author = {Hao Wu and Xiufeng Zhao and Sophia M. Hochrein and Miriam Eckstein and Gabriela Farias Gubert and Konrad Knöpper and Ana Maria Mansilla and Arman Öner and Rémi Doucet-Ladevèze and Werner Schmitz and Bart Ghesquière and Sebastian Theurich and Jan Dudek and Georg Gasteiger and Alma Zernecke and Sebastian Kobold and Wolfgang Kastenmüller and Martin Vaeth}, journal = {Nature Communications}, year = {2023}, doi = {10.1038/s41467-023-42634-3}, }

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