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Updated: Aug 22, 2025

Tumor Transplantation for Assessing the Dynamics of Tumor-Infiltrating CD8+ T Cells in Mice
Published on: June 12, 2021
BLIMP1 and NR4A3 transcription factors reciprocally regulate antitumor CAR T cell stemness and exhaustion
In-Young Jung1,2,3,4, Vivek Narayan3,5, Sierra McDonald6,7,8,9
1Department of Microbiology, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA 19104, USA.
Abstract:
Chimeric antigen receptor (CAR) T cells have not induced meaningful clinical responses in solid tumors. Loss of T cell stemness, poor expansion capacity, and exhaustion during prolonged tumor antigen exposure are major causes of CAR T cell therapeutic resistance. Single-cell RNA-sequencing analysis of CAR T cells from a first-in-human trial in metastatic prostate cancer identified two independently validated cell states associated with antitumor potency or lack of efficacy. Low expression of PRDM1, encoding the BLIMP1 transcription factor, defined highly potent TCF7 [encoding T cell factor 1 (TCF1)]-expressing CD8+ CAR T cells, whereas enrichment of HAVCR2 [encoding T cell immunoglobulin and mucin-domain containing-3 (TIM-3)]-expressing CD8+ T cells with elevated PRDM1 was associated with poor outcomes. PRDM1 knockout promoted TCF7-dependent CAR T cell stemness and proliferation, resulting in marginally enhanced leukemia control in mice. However, in the setting of PRDM1 deficiency, a negative epigenetic feedback program of nuclear factor of activated T cells (NFAT)-driven T cell dysfunction was identified. This program was characterized by compensatory up-regulation of NR4A3 and other genes encoding exhaustion-related transcription factors that hampered T cell effector function in solid tumors. Dual knockout of PRDM1 and NR4A3 skewed CAR T cell phenotypes away from TIM-3+CD8+ and toward TCF1+CD8+ to counter exhaustion of tumor-infiltrating CAR T cells and improve antitumor responses, effects that were not achieved with PRDM1 and NR4A3 single knockout alone. These data underscore dual targeting of PRDM1 and NR4A3 as a promising approach to advance adoptive cell immuno-oncotherapy.
Insights
CAR T cell therapy faces challenges in solid tumors due to T cell exhaustion. Dual targeting of PRDM1 and NR4A3 enhances CAR T cell stemness and antitumor responses by counteracting exhaustion.
Area of Science:
- Immunotherapy
- Oncology
- Cellular Therapy
Background:
- Chimeric antigen receptor (CAR) T cells show limited efficacy in solid tumors, attributed to T cell stemness loss, poor expansion, and exhaustion.
- Identifying distinct CAR T cell states linked to therapeutic outcomes is crucial for improving CAR T cell therapy.
Purpose of the Study:
- To investigate the molecular mechanisms underlying CAR T cell resistance in solid tumors.
- To identify novel therapeutic targets for enhancing CAR T cell function and antitumor responses.
Main Methods:
- Single-cell RNA-sequencing analysis of CAR T cells from a metastatic prostate cancer trial.
- Genetic manipulation (knockout studies) of PRDM1 and NR4A3 in CAR T cells.
- In vivo assessment of CAR T cell function in mouse models.
Main Results:
- Low PRDM1 expression correlated with potent TCF1+ CD8+ CAR T cells, while high PRDM1 and TIM-3+ CD8+ CAR T cells were associated with poor outcomes.
- PRDM1 knockout enhanced CAR T cell stemness and proliferation but led to NFAT-driven T cell dysfunction via NR4A3 upregulation.
- Dual knockout of PRDM1 and NR4A3 effectively countered T cell exhaustion, promoting a TCF1+ phenotype and improving antitumor responses in solid tumors.
Conclusions:
- CAR T cell efficacy in solid tumors is modulated by PRDM1 and NR4A3 expression.
- Dual targeting of PRDM1 and NR4A3 represents a promising strategy to overcome CAR T cell exhaustion and enhance adoptive cell immuno-oncotherapy.
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