A novel small molecule Enpp1 inhibitor improves tumor control following radiation therapy by targeting stromal Enpp1
Jason R Baird1, Alejandro F Alice1, Roland Saito2
1Earle A. Chiles Research Institute, Robert W. Franz Cancer Center, Providence Portland Medical Center, 4805 NE Glisan St, Portland, OR, 97213, USA.
Abstract:
The uniqueness in each person's cancer cells and variation in immune infiltrates means that each tumor represents a unique problem, but therapeutic targets can be found among their shared features. Radiation therapy alters the interaction between the cancer cells and the stroma through release of innate adjuvants. The extranuclear DNA that can result from radiation damage of cells can result in production of the second messenger cyclic guanosine monophosphate-adenosine monophosphate (cGAMP) by cyclic GMP-AMP synthase (cGAS). In turn, cGAMP can activate the innate sensor stimulator of interferon genes (STING), resulting in innate immune activation. Ectonucleotide pyrophosphatase/phosphodiesterase 1 (Enpp1) is a phosphodiesterase that can be expressed by cancer cells that can degrade cGAMP, thus can decrease or block STING activation following radiation therapy, impairing the innate immunity that is critical to support adaptive immune control of tumors. We observed that many human and murine cancer cells lack Enpp1 expression, but that Enpp1 is expressed in cells of the tumor stroma where it limits tumor control by radiation therapy. We demonstrate in preclinical models the efficacy of a novel Enpp1 inhibitor and show that this inhibitor improves tumor control by radiation even where the cancer cells lack Enpp1. This mechanism requires STING and type I interferon (IFN) receptor expression by non-cancer cells and is dependent on CD8 T cells as a final effector mechanism of tumor control. This suggests that Enpp1 inhibition may be an effective partner for radiation therapy regardless of whether cancer cells express Enpp1. This broadens the potential patient base for whom Enpp1 inhibitors can be applied to improve innate immune responses following radiation therapy.
Insights
Inhibiting Enpp1 enhances radiation therapy by boosting innate immunity via STING activation. This approach improves tumor control, even when cancer cells lack Enpp1, broadening its therapeutic potential.
Area of Science:
- Immunology
- Oncology
- Radiotherapy
Background:
- Tumor microenvironments are unique, necessitating targeted therapies.
- Radiation therapy can activate innate immunity through DNA damage and cyclic GMP-AMP (cGAMP) production.
- Ectonucleotide pyrophosphatase/phosphodiesterase 1 (Enpp1) degrades cGAMP, potentially blocking STING-mediated immune responses.
Purpose of the Study:
- To investigate the role of Enpp1 in limiting radiation therapy's efficacy.
- To evaluate the therapeutic potential of Enpp1 inhibition in preclinical cancer models.
Main Methods:
- Assessed Enpp1 expression in human and murine tumors.
- Utilized a novel Enpp1 inhibitor in preclinical models.
- Investigated the mechanism involving STING, type I interferon (IFN) receptor, and CD8 T cells.
Main Results:
- Enpp1 is expressed in tumor stroma and limits radiation therapy efficacy.
- Enpp1 inhibition improved tumor control in preclinical models, irrespective of cancer cell Enpp1 expression.
- The mechanism relies on STING and IFN receptor in non-cancer cells and CD8 T cell effector function.
Conclusions:
- Enpp1 inhibition is a promising strategy to enhance radiation therapy outcomes.
- Targeting Enpp1 can overcome immune suppression in the tumor microenvironment.
- This approach broadens the application of Enpp1 inhibitors for improving radiation therapy in diverse patient populations.
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