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Caffeine promotes anti-tumor immune response during tumor initiation: Involvement of the adenosine A2A receptor
Hadar Eini1, Valeria Frishman1, Robert Yulzari2
1Department of Clinical Biochemistry and Pharmacology, Faculty of Health Sciences, Ben-Gurion University of the Negev, Beer-Sheva, Israel.
Abstract:
Epidemiologic studies depict a negative correlation between caffeine consumption and incidence of tumors in humans. The main pharmacological effects of caffeine are mediated by antagonism of the adenosine receptor, A2AR. Here, we examine whether the targeting of A2AR by caffeine plays a role in anti-tumor immunity. In particular, the effects of caffeine are studied in wild-type and A2AR knockout (A2AR(-/-)) mice. Tumor induction was achieved using the carcinogen 3-methylcholanthrene (3-MCA). Alternatively, tumor cells, comprised of 3-MCA-induced transformed cells or B16 melanoma cells, were inoculated into animal footpads. Cytokine release was determined in a mixed lymphocyte tumor reaction (MLTR). According to our findings, caffeine-consuming mice (0.1% in water) developed tumors at a lower rate compared to water-consuming mice (14% vs. 53%, respectively, p=0.0286, n=15/group). Within the caffeine-consuming mice, tumor-free mice displayed signs of autoimmune alopecia and pronounced leukocyte recruitment intocarcinogen injection sites. Similarly, A2AR(-/-) mice exhibited reduced rates of 3-MCA-induced tumors. In tumor inoculation studies, caffeine treatment resulted in inhibition of tumor growth and elevation in proinflammatory cytokine release over water-consuming mice, as depicted by MLTR. Addition of the adenosine receptor agonist, NECA, to MLTR resulted in a sharp decrease in IFNγ levels; this was reversed by the highly selective A2AR antagonist, ZM241385. Thus, immune response modulation through either caffeine or genetic deletion of A2AR leads to a Th1 immune profile and suppression of carcinogen-induced tumorigenesis. Taken together, our data suggest that the use of pharmacologic A2AR antagonists may hold therapeutic potential in diminishing the rate of cancer development.
Insights
Caffeine consumption and blocking the adenosine A2A receptor (A2AR) reduce tumor development by enhancing anti-tumor immunity. This suggests A2AR antagonists may offer potential cancer prevention strategies.
Area of Science:
- Immunology
- Pharmacology
- Oncology
Background:
- Epidemiologic studies suggest a link between caffeine intake and lower tumor incidence.
- Caffeine's primary mechanism involves antagonism of the adenosine A2A receptor (A2AR).
Purpose of the Study:
- To investigate the role of A2AR antagonism by caffeine in anti-tumor immunity.
- To evaluate the effects of caffeine and A2AR knockout on tumor development and immune response.
Main Methods:
- Tumor induction in mice using 3-methylcholanthrene (3-MCA) or tumor cell inoculation.
- Administration of caffeine in drinking water to wild-type and A2AR knockout mice.
- Assessment of cytokine release using mixed lymphocyte tumor reaction (MLTR).
Main Results:
- Caffeine consumption significantly reduced tumor incidence in mice (14% vs. 53%).
- A2AR knockout mice also showed reduced tumor development.
- Caffeine treatment inhibited tumor growth and increased pro-inflammatory cytokine release.
Conclusions:
- Modulating immune response via caffeine or A2AR deletion promotes a Th1 immune profile.
- This immune modulation suppresses carcinogen-induced tumorigenesis.
- Pharmacologic A2AR antagonists may hold therapeutic potential for cancer prevention.
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