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Updated: Jan 23, 2026

Multiplexed Immunofluorescence Analysis and Quantification of Intratumoral PD-1+ Tim-3+ CD8+ T Cells
Published on: February 8, 2018
PD-1 signaling affects cristae morphology and leads to mitochondrial dysfunction in human CD8+ T lymphocytes
Jesús Ogando1, María Eugenia Sáez2, Javier Santos1
1Department of Immunology and Oncology, Centro Nacional de Biotecnología (CNB/CSIC), Madrid, Spain.
Background:
Binding of the programmed death-1 (PD-1) receptor to its ligands (PD-L1/2) transduces inhibitory signals that promote exhaustion of activated T cells. Blockade of the PD-1 pathway is widely used for cancer treatment, yet the inhibitory signals transduced by PD-1 in T cells remain elusive.
Methods:
Expression profiles of human CD8+ T cells in resting, activated (CD3 + CD28) and PD-1-stimulated cells (CD3 + CD28 + PD-L1-Fc) conditions were evaluated by RNA-seq. Bioinformatic analyses were used to identify signaling pathways differentially regulated in PD-1-stimulated cells. Metabolic analyses were performed with SeaHorse technology, and mitochondrial ultrastructure was determined by transmission electron microscopy. PD-1-regulated mitochondrial genes were silenced using short-hairpin RNA in primary cells. Blue native gel electrophoresis was used to determine respiratory supercomplex assembly.
Results:
PD-1 engagement in human CD8+ T cells triggers a specific, progressive genetic program different from that found in resting cells. Gene ontology identified metabolic processes, including glycolysis and oxidative phosphorylation (OXPHOS), as the main pathways targeted by PD-1. We observed severe functional and structural alterations in the mitochondria of PD-1-stimulated cells, including a reduction in the number and length of mitochondrial cristae. These cristae alterations were associated with reduced expression of CHCHD3 and CHCHD10, two proteins that form part of the mitochondrial contact site and cristae organizing system (MICOS). Although PD-1-stimulated cells showed severe cristae alterations, assembly of respiratory supercomplexes was unexpectedly greater in these cells than in activated T cells. CHCHD3 silencing in primary CD8+ T cells recapitulated some effects induced by PD-1 stimulation, including reduced mitochondrial polarization and interferon-γ production following T cell activation with anti-CD3 and -CD28 activating antibodies.
Conclusions:
Our results suggest that mitochondria are the main targets of PD-1 inhibitory activity. PD-1 reprograms CD8+ T cell metabolism for efficient use of fatty acid oxidation; this mitochondrial phenotype might explain the long-lived phenotype of PD-1-engaged T cells.
Insights
Programmed death-1 (PD-1) engagement in T cells targets mitochondria, altering their structure and metabolism. This reprogramming enhances fatty acid oxidation, potentially explaining the long-lived nature of PD-1-inhibited T cells in cancer therapy.
Area of Science:
- Immunology
- Cell Biology
- Cancer Biology
Background:
- Programmed death-1 (PD-1) receptor binding to its ligands inhibits T cell function.
- PD-1 pathway blockade is a key cancer immunotherapy strategy.
- The precise inhibitory signals transduced by PD-1 in T cells are not fully understood.
Purpose of the Study:
- To elucidate the molecular mechanisms by which PD-1 engagement inhibits CD8+ T cells.
- To investigate the impact of PD-1 signaling on T cell metabolism and mitochondrial function.
Main Methods:
- RNA sequencing of human CD8+ T cells under resting, activated, and PD-1-stimulated conditions.
- Bioinformatic analysis of gene expression profiles to identify regulated pathways.
- Seahorse technology for metabolic flux analysis and transmission electron microscopy for mitochondrial ultrastructure.
- Gene silencing of PD-1-regulated mitochondrial genes and assessment of T cell function.
Main Results:
- PD-1 stimulation induces a distinct genetic program in CD8+ T cells, primarily targeting metabolic pathways like glycolysis and oxidative phosphorylation (OXPHOS).
- Significant structural and functional mitochondrial alterations were observed, including reduced cristae and decreased expression of MICOS components (CHCHD3, CHCHD10).
- Despite cristae defects, PD-1-stimulated cells showed increased respiratory supercomplex assembly, and CHCHD3 silencing mimicked PD-1 effects on mitochondrial polarization and cytokine production.
Conclusions:
- Mitochondria are identified as primary targets of PD-1 inhibitory activity.
- PD-1 reprograms CD8+ T cell metabolism towards enhanced fatty acid oxidation.
- This mitochondrial reprogramming may contribute to the sustained survival of PD-1-engaged T cells, impacting cancer immunotherapy outcomes.
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