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Updated: Oct 4, 2025

Real-time Monitoring of Mitochondrial Respiration in Cytokine-differentiated Human Primary T Cells
Published on: October 19, 2021
Chemical augmentation of mitochondrial electron transport chains tunes T cell activation threshold in tumors
Yosuke Dotsu1,2, Daisuk Muraoka3,4, Naohisa Ogo5
1Department of Oncology, Nagasaki University Graduate School of Biomedical Sciences, Nagasaki, Japan.
Background:
Cancer immunotherapy shows insufficient efficacy for low immunogenic tumors. Furthermore, tumors often downregulate antigen and major histocompatibility complex expression to escape recognition by T cells, resulting in insufficient T cell receptor (TCR) stimulation in the tumor microenvironment. Thus, augmenting TCR-mediated recognition of tumor antigens is a useful strategy to improve the efficacy of cancer immunotherapy.
Methods:
We screened 310 small molecules from our library and identified PQDN, a small molecule that activates CD8 T cells after TCR engagement, even when antigen stimulation is too weak for their activation. We used inhibitors of mitochondrial functions and Seahorse Flux Analyzer to investigate the mechanism underlying the effect of PQDN on T cells. Effect of PQDN on tumor-infiltrating CD8 T cells was examined using flow cytometry and TCR repertoire analysis.
Results:
PQDN increased mitochondrial reciprocal capacity through enhancement of electron transport chains (ETCs) and facilitated glycolysis via mTOR/AKT signaling, resulting in augmented CD8 T cell activation, even when antigen stimulation is extremely weak. Intratumoral administration of this compound into tumor-bearing mice tunes inactivated T cell with tumor antigen recognition potent and expanded functional T cell receptor diversity of tumor-infiltrating T cells, augmenting antitumor immune responses and retarding tumor growth. Furthermore, PQDN has a synergistic potent with T cell dependent immunotherapy, such as checkpoint inhibitory therapy or adoptive cell therapy, even in a low immunogenic tumor. We also demonstrated that this compound enhances the activation of human CD8 T cells.
Conclusions:
These data suggest that tuning the T cell activation threshold by chemical activation of mitochondrial ETC is a new strategy for improving therapeutic efficacy through the activation of low-avidity tumor-specific T cells.
Insights
A novel small molecule, PQDN, enhances CD8 T cell activation by boosting mitochondrial function, improving cancer immunotherapy efficacy against low immunogenic tumors and augmenting antitumor immune responses.
Area of Science:
- Immunology
- Oncology
- Pharmacology
Background:
- Cancer immunotherapy faces challenges with low immunogenic tumors.
- Tumors evade T cell recognition by downregulating antigen and MHC expression.
- Augmenting T cell receptor (TCR) stimulation is crucial for enhancing immunotherapy.
Purpose of the Study:
- To identify small molecules that enhance T cell activation for improved cancer immunotherapy.
- To investigate the mechanism of action of identified compounds on T cells.
- To evaluate the therapeutic potential of PQDN in preclinical cancer models.
Main Methods:
- Screening of 310 small molecules to identify PQDN.
- Utilizing mitochondrial function inhibitors and Seahorse Flux Analyzer to study PQDN's mechanism.
- Assessing PQDN's effect on tumor-infiltrating CD8 T cells via flow cytometry and TCR repertoire analysis.
Main Results:
- PQDN enhances CD8 T cell activation by boosting mitochondrial electron transport chains (ETCs) and glycolysis via mTOR/AKT signaling, even with weak antigen stimulation.
- Intratumoral PQDN administration in mice increases T cell avidity for tumor antigens, expands T cell receptor diversity, and augments antitumor responses.
- PQDN demonstrates synergistic effects with checkpoint inhibitors and adoptive cell therapy, and enhances human CD8 T cell activation.
Conclusions:
- Chemical activation of mitochondrial ETCs by PQDN offers a novel strategy to enhance T cell activation thresholds.
- This approach can improve therapeutic efficacy by activating low-avidity tumor-specific T cells.
- PQDN shows promise for overcoming resistance in cancer immunotherapy.
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