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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.
Abstract:
Generating stem-like memory T cells (TSCM) is a potential strategy to improve adoptive immunotherapy. Elucidating optimal ways to modulate signaling pathways that enrich TSCM properties could identify approaches to achieve this goal. We discovered herein that blocking the PI3Kδ pathway pharmaceutically to varying degrees can generate T cells with increasingly heightened stemness properties, based on the progressive enrichment of the transcription factors Tcf1 and Lef1. T cells with enhanced stemness features exhibited metabolic plasticity, marked by improved mitochondrial function and glucose uptake after tumor recognition. Conversely, T cells with low or medium stemness were less metabolically dynamic, vulnerable to antigen-induced cell death, and expressed more inhibitory checkpoint receptors. Only T-cell receptor-specific or chimeric antigen receptor (CAR)-specific T cells with high stemness persisted in vivo and mounted protective immunity to tumors. Likewise, the strongest level of PI3Kδ blockade in vitro generated human tumor-infiltrating lymphocytes and CAR T cells with elevated stemness properties, in turn bolstering their capacity to regress human solid tumors. The stemness level of T cells in vitro was important, ultimately impacting their efficacy in mice bearing three distinct solid tumors. Lef1 and Tcf1 sustained antitumor protection by donor high CD8+ TSCM or CD4+ Th17SCM, as deletion of either one compromised the therapeutic efficacy. Collectively, these findings highlight the importance of strategic modulation of PI3Kδ signaling in T cells to induce stemness and lasting protective responses to solid tumors.
Significance:
Elevating T-cell stemness by progressively blocking PI3Kδ signaling during ex vivo manufacturing of adoptive cell therapies alters metabolic and functional properties to enhance antitumor immunity dependent on Tcf1 and Lef1.
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.
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