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Collagen-disrupting attIL12 TIL therapy boosts deep T cell infiltration via dual signaling activation and CCKAR
Jiemiao Hu1, Harjeet Singh1, Yining Jin1
1Division of Pediatrics, Department of Pediatrics-Research, The University of Texas MD Anderson Cancer Center, Houston, TX 77030.
Abstract:
Tumor-targeted T cell therapies of various types have been booming, but T cell therapy is limited by its inability to penetrate the collagen barrier surrounding tumors. The destruction of tumor collagen is significant because collagen both suppresses T cells and contributes to the formation of the extracellular matrix. Our previously reported cell-surface vimentin (CSV)-targeted and membrane-anchored interleukin 12-armed (attIL12) T cells can reduce collagen production by killing cancer-associated fibroblasts, but fail to reduce collagen expression by tumor cells, resulting in resistance to attIL12-T cell treatment. In this study, we found that CCKAR directly boosts collagen production by tumor cells in vitro and in vivo. attIL12-modified tumor-infiltrating lymphocytes (TILs) disabled collagen production by CCKAR-high autologous tumor cells in vitro and sarcoma patient-derived xenografts (PDXs) in vivo. This disruption of collagen production by tumor cells by attIL12-TILs overcomes resistance to attIL12-T cell treatment and required a simultaneous interaction between the CSV on autologous tumor cells, which is targeted by attIL12, and human leukocyte antigen-T cell receptor on attIL12-TILs; When either interaction was abrogated, collagen production and CCKAR expression were not shut down. Mechanistically, the interaction between attIL12-TILs and autologous tumor cells induced interferon gamma production synergistically, which in combination with CCKAR downregulation reduced collagen expression through suppression of both transforminggrowth factor beta-stimulated SMAD activation and CCKAR-AKT signaling. Diminishing collagen expression from tumor cells significantly increased T cell infiltration and improved tumor growth inhibition in PDX sarcomas. Thus, this attIL12-TIL therapy holds great clinical potential for boosting T cell infiltration in high-grade, collagen-rich tumors.
Insights
New T cell therapy targets collagen-rich tumors by disabling tumor cell collagen production. This enhances T cell infiltration and tumor growth inhibition, offering potential for treating difficult cancers.
Area of Science:
- Immunology
- Oncology
- Biotechnology
Background:
- T cell therapies face challenges penetrating tumor collagen barriers.
- Existing therapies targeting cancer-associated fibroblasts show limited efficacy against tumor cell-derived collagen.
- Tumor cell collagen suppresses T cell activity and contributes to the tumor microenvironment.
Purpose of the Study:
- To investigate a novel T cell therapy to overcome resistance in collagen-rich tumors.
- To evaluate the efficacy of modified T cells in reducing tumor cell collagen production.
- To elucidate the mechanism by which T cells disrupt tumor collagen synthesis.
Main Methods:
- Development of membrane-anchored interleukin 12-armed (attIL12) T cells targeting cell-surface vimentin (CSV).
- In vitro and in vivo assessment of attIL12-modified tumor-infiltrating lymphocytes (TILs) on CCKAR-high tumor cells and sarcoma patient-derived xenografts (PDXs).
- Analysis of molecular signaling pathways including interferon gamma, transforming growth factor beta, SMAD, and AKT signaling.
Main Results:
- attIL12-TILs effectively reduced collagen production by CCKAR-high tumor cells and in PDX models.
- Therapy efficacy was dependent on simultaneous interaction between CSV on tumor cells and TCR on attIL12-TILs.
- Mechanism involves synergistic interferon gamma production, CCKAR downregulation, and suppression of TGF-β/SMAD and CCKAR-AKT signaling.
Conclusions:
- Disrupting tumor cell collagen production via attIL12-TILs overcomes resistance to T cell therapy.
- This approach significantly enhances T cell infiltration and tumor growth inhibition in collagen-rich tumors.
- attIL12-TIL therapy shows significant clinical potential for treating high-grade, collagen-rich cancers.
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