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Updated: Jan 14, 2026

Measuring Mitochondrial Function of Naïve and Effector CD8 T Cells
Published on: March 28, 2025
Between ROS and a Hard Place: Telomere Damage as a Driver of T-cell Exhaustion
Tanmana Mitra1,2, Santosha A Vardhana1,2
1Immunology and Microbial Pathogenesis Program, Weill Cornell Graduate School of Medical Sciences, New York, New York.
Abstract:
In recent years, the accumulation of mitochondrial reactive oxygen species (ROS) has been shown to limit the proliferative capacity and intratumoral persistence of CD8+ T cells, but the molecular mechanisms by which ROS produces functional defects in exhausted CD8+ T cells remain incompletely understood. Using a series of elegant genetic tools, Rivadeneira and colleagues demonstrate that the accumulation of mitochondrial ROS is sufficient to directly compromise telomere integrity. The authors induced singlet oxygen within specific subcellular compartments in T cells, achieving precise temporal and spatial control over ROS production. Genetically driven mitochondrial ROS accumulation reproduced hallmarks of intratumoral T-cell dysfunction while also producing marked telomere fragility. Consistent with these findings, tumor-infiltrating CD8+ T cells from patients with melanoma and head and neck cancers exhibited substantial accumulation of DNA damage at telomeres compared with healthy donor or autologous peripheral T cells. Moreover, restricting ROS generation specifically to telomeres was sufficient to reproduce T-cell dysfunction, whereas targeting the antioxidant enzyme glutathione peroxidase 1 to telomeres reduced DNA damage and enhanced T-cell effector functions, leading to improved tumor control. These findings reveal telomeres as key mediators of redox stress-driven T-cell dysfunction and suggest that interventions aimed at protecting chromosome ends may represent a novel strategy to enhance antitumor immunity.
Insights
Mitochondrial reactive oxygen species (ROS) damage telomeres, impairing CD8+ T cell function in cancer. Protecting telomeres may enhance anti-tumor immunity by preserving T cell effectiveness.
Area of Science:
- Immunology
- Molecular Biology
- Oncology
Background:
- Mitochondrial reactive oxygen species (ROS) accumulation impairs CD8+ T cell proliferation and persistence.
- The precise molecular mechanisms linking ROS to CD8+ T cell exhaustion are not fully understood.
Purpose of the Study:
- To investigate the role of mitochondrial ROS in CD8+ T cell dysfunction.
- To determine if ROS directly impacts telomere integrity.
- To explore therapeutic strategies targeting ROS-induced T cell dysfunction.
Main Methods:
- Utilized genetic tools to induce singlet oxygen in specific subcellular compartments of T cells.
- Assessed telomere integrity and DNA damage in T cells with induced ROS.
- Analyzed tumor-infiltrating CD8+ T cells from cancer patients.
- Investigated the effect of targeting antioxidant enzymes to telomeres.
Main Results:
- Mitochondrial ROS accumulation directly compromises telomere integrity, causing fragility.
- Tumor-infiltrating CD8+ T cells from cancer patients show significant telomere DNA damage.
- Targeting ROS to telomeres reproduced T cell dysfunction.
- Enhancing antioxidant enzyme glutathione peroxidase 1 at telomeres reduced DNA damage and improved T cell function and tumor control.
Conclusions:
- Telomeres are key mediators of redox stress-driven T cell dysfunction.
- Protecting telomeres from ROS damage is a potential strategy to enhance anti-tumor immunity.
- Interventions targeting telomere integrity may improve cancer immunotherapy outcomes.
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