Progressively Enhancing Stemness of Adoptively Transferred T Cells with PI3Kδ Blockade Improves Metabolism and

Guillermo O Rangel Rivera1,2,3, Connor J Dwyer3, Hannah M Knochelmann1,2,3

  • 1Division of Surgical Oncology, Department of Surgery, Emory University, Atlanta, Georgia.

Cancer Research
|October 6, 2023
PubMed

Insights

Blocking the PI3Kδ pathway generates stem-like memory T cells (TSCM) with enhanced anti-tumor immunity. This strategy improves adoptive immunotherapy by boosting T cell stemness, metabolic function, and tumor regression.

Area of Science:

  • Immunology
  • Cell Biology
  • Cancer Research

Background:

  • Generating stem-like memory T cells (TSCM) is crucial for effective adoptive immunotherapy.
  • Modulating signaling pathways is key to enriching TSCM properties for improved therapeutic outcomes.

Purpose of the Study:

  • To investigate the effect of PI3Kδ pathway blockade on T cell stemness and its impact on antitumor immunity.
  • To determine the role of transcription factors Tcf1 and Lef1 in mediating the enhanced stemness and efficacy of T cells.

Main Methods:

  • Progressively blocking the PI3Kδ pathway in T cells ex vivo.
  • Assessing T cell stemness properties, including Tcf1 and Lef1 enrichment.
  • Evaluating metabolic plasticity, mitochondrial function, and glucose uptake.
  • Testing the in vivo efficacy of generated T cells in tumor models.
  • Analyzing the role of Tcf1 and Lef1 in antitumor responses.

Main Results:

  • Progressive PI3Kδ blockade increased T cell stemness, marked by elevated Tcf1 and Lef1 levels.
  • Enhanced stemness correlated with improved metabolic plasticity, mitochondrial function, and glucose uptake.
  • High-stemness T cells demonstrated superior persistence, tumor regression, and antitumor immunity in vivo.
  • Deletion of Tcf1 or Lef1 compromised the therapeutic efficacy of stemness-enhanced T cells.

Conclusions:

  • Strategic modulation of PI3Kδ signaling is a viable approach to generate potent stem-like memory T cells for adoptive immunotherapy.
  • PI3Kδ blockade enhances T cell stemness, metabolic fitness, and antitumor functions, dependent on Tcf1 and Lef1.
  • This strategy holds promise for improving the efficacy of T cell-based therapies against solid tumors.

Related Concept Videos