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EP2/EP4 targeting prevents tumor-derived PGE2-mediated immunosuppression in cDC2s
Jorge Cuenca-Escalona1, Johanna Bödder1, Beatriz Subtil1
1Department of Medical BioSciences, Radboud University Medical Center, Geert Grooteplein 28, 6525 GA, Nijmegen, the Netherlands.
Abstract:
Tumor-derived prostaglandin E2 (PGE2) impairs antitumor immunity by priming suppressive functions on various immune cell types, including dendritic cells (DCs). In this way, tumors mediate DC dysfunction and hamper their antitumoral activity. PGE2 is known to modulate DC function via signaling through the E-type prostanoid receptor 2 (EP2) and EP4. Preclinical studies have demonstrated the therapeutic value of targeting EP2/4 receptor signaling in DCs. Ongoing phase 1 clinical trials with EP antagonists have shown immunomodulation in cancer patients. However, the systemic drug administration leads to off-target events and subsequent side effects. To limit the off-target effects of EP targeting, EP2 and EP4 antagonists were encapsulated in polymeric nanoparticles (NPs). In this study, we evaluated the efficacy of EP2/4-specific antagonists encapsulated in NPs to protect conventional type 2 DCs (cDC2s) from suppressive effects of tumor-derived PGE2 in different tumor models. We show that tumor-derived PGE2 signals via EP2/4 to mediate the acquisition of a suppressive phenotype of cDC2s. EP2/4 antagonists encapsulated in NPs impaired the conversion of cDC2s toward a suppressive state and inhibited the occurrence of suppressive features such as interleukin-10 production or the ability to expand regulatory T cells. Importantly, the NPs abolished the transition toward this suppressive state in different tumor models: melanoma-conditioned media, ascites fluid derived from ovarian cancer patients (2-dimensional), and upon coculture with colorectal cancer patient-derived organoids (3-dimensional). We propose that targeting the PGE2-EP2/4 axis using NPs can achieve immunomodulation in the immune system of cancer patients, alleviate tumor-derived suppression, and thus facilitate the development of potent antitumor immunity in cancer patients.
Insights
Tumor-derived prostaglandin E2 (PGE2) suppresses antitumor immunity by affecting dendritic cells (DCs). Nanoparticle-encapsulated EP2/4 antagonists protected DCs from PGE2, enhancing anti-cancer immune responses.
Area of Science:
- Immunology
- Cancer Biology
- Nanomedicine
Background:
- Tumor-derived prostaglandin E2 (PGE2) suppresses antitumor immunity, particularly by impairing dendritic cell (DC) function via EP2 and EP4 receptors.
- Targeting EP2/4 signaling shows therapeutic potential, but systemic administration causes side effects.
Purpose of the Study:
- To evaluate the efficacy of EP2/4 antagonists encapsulated in nanoparticles (NPs) to protect conventional type 2 DCs (cDC2s) from tumor-derived PGE2.
- To assess the potential of NP-delivered EP2/4 antagonists in various cancer models.
Main Methods:
- Encapsulation of EP2/4 antagonists in polymeric nanoparticles (NPs).
- Evaluation of NP efficacy in protecting cDC2s from PGE2-induced suppression in melanoma, ovarian, and colorectal cancer models.
- Assessment of suppressive markers like interleukin-10 production and regulatory T cell expansion.
Main Results:
- Tumor-derived PGE2 induces a suppressive phenotype in cDC2s via EP2/4 signaling.
- NP-encapsulated EP2/4 antagonists effectively inhibited this suppressive transition in cDC2s.
- NPs reduced interleukin-10 production and regulatory T cell expansion, crucial for immune suppression.
Conclusions:
- Targeting the PGE2-EP2/4 axis with NP-encapsulated antagonists can overcome tumor-induced immune suppression.
- This approach holds promise for alleviating immunosuppression and enhancing antitumor immunity in cancer patients.
- Nanoparticle delivery limits off-target effects, offering a safer therapeutic strategy.
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