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Fluorescence Microscopy for ATP Internalization Mediated by Macropinocytosis in Human Tumor Cells and Tumor-xenografted Mice
Published on: June 30, 2021
Sensing of extracellular ATP via P2RX7 drives lung tumor growth through regulatory T cell suppressive function
Igor Santiago-Carvalho1, Ronaldo Francisco2, Bruna de Gois Macedo1
1Department of Immunology, Mayo Clinic, Phoenix, AZ, US.
Abstract:
Lung cancer is the leading cause of cancer-related deaths worldwide and, despite treatment advances, immune suppression remains an obstacle to effective therapy. Effector CD4+ T cells (CD4+ Teffs) are critical for antitumor immunity, but their function is often inhibited by regulatory T cells (Tregs), which accumulate in lung tumors and perform suppressive functions through multiple mechanisms. This suppression leads to tumor progression and poor patient outcomes. However, the mechanisms underlying Treg-mediated suppression are not fully understood. Here, we identify the extracellular ATP receptor P2RX7 as a key regulator of Treg function in lung tumors. Using a murine lung cancer model induced by Lewis lung carcinoma cells, we demonstrate that P2RX7 enhances the suppressive capacity of tumor-infiltrating Tregs, promoting tumor growth. In T cell-specific P2RX7-KO mice, reduced Treg infiltration was accompanied by increased CD4+ Teff accumulation and improved tumor control. Treg-specific P2RX7-KO mice exhibit reduced tumor growth, confirming a cell-intrinsic role of P2RX7 in Tregs. Suppression assays revealed that tumor-infiltrating WT Tregs have greater suppressive activity compared to P2RX7-KO Tregs, which failed to inhibit type 1 and Tfh-like responses. This was associated with increased tumor-specific IgG production by lung B cells in P2RX7-KO mice. We also observed that WT Tregs express higher levels of the immunosuppressive surface molecule CTLA-4 when compared to P2RX7-KO Tregs. In summary, we show that P2RX7 expression on Tregs is essential for their suppressive function in lung cancer, and targeting of P2RX7 may constitute a novel strategy to improve lung cancer treatment by alleviating Treg-mediated immune suppression.
Insights
Regulatory T cells (Tregs) suppress anti-tumor immunity in lung cancer. P2RX7 on Tregs enhances this suppression, promoting tumor growth. Targeting P2RX7 may improve lung cancer treatments by reducing immune suppression.
Area of Science:
- Immunology
- Oncology
- Molecular Biology
Background:
- Lung cancer causes significant mortality worldwide.
- Immune suppression by regulatory T cells (Tregs) hinders effective cancer therapy.
- Mechanisms of Treg-mediated suppression in lung tumors require further elucidation.
Purpose of the Study:
- To identify key regulators of Treg function in lung tumors.
- To investigate the role of the extracellular ATP receptor P2RX7 in Treg-mediated immune suppression.
- To explore P2RX7 as a potential therapeutic target for lung cancer.
Main Methods:
- Utilized a murine lung cancer model (Lewis lung carcinoma).
- Employed T cell-specific and Treg-specific P2RX7 knockout (KO) mice.
- Conducted suppression assays and analyzed immune cell populations and antibody production.
Main Results:
- P2RX7 enhances the suppressive capacity of tumor-infiltrating Tregs, promoting lung tumor growth.
- P2RX7-KO mice showed reduced Treg infiltration, increased effector CD4+ T cells, and improved tumor control.
- P2RX7 deficiency in Tregs impaired their suppressive activity and led to increased tumor-specific IgG production.
Conclusions:
- P2RX7 is crucial for Treg suppressive function in the lung tumor microenvironment.
- Targeting P2RX7 on Tregs represents a potential novel strategy to overcome immune suppression in lung cancer.
- Alleviating Treg-mediated suppression via P2RX7 inhibition could enhance anti-tumor immunity and improve treatment outcomes.
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