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.

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.