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Mechanisms of cancer prevention by tea constituents
Joshua D Lambert1, Chung S Yang
1Department of Chemical Biology, Ernest Mario School of Pharmacy, Rutgers, The State University of New Jersey, Piscataway, NJ 08854, USA.
Abstract:
Consumption of tea (Camellia sinensis) has been suggested to prevent cancer, heart disease and other diseases. Animal studies have shown that tea and tea constituents inhibit carcinogenesis of the skin, lung, oral cavity, esophagus, stomach, liver, prostate and other organs. In some studies, the inhibition correlated with an increase in tumor cell apoptosis and a decrease in cell proliferation. Studies with human cancer cell lines have demonstrated that epigallocatechin-3-gallate (EGCG), a major tea polyphenol, inhibits mitogen-activated protein kinases, cyclin-dependent kinases, growth factor-related cell signaling, activation of activator protein 1 (AP-1) and nuclear factor kappaB (NFkappaB), topoisomerase I and matrix metalloproteinases as well as other potential targets. Although some studies report effects of EGCG at submicromolar levels, most experiments require concentrations of >10 or 20 micromol/L to demonstrate the effect. In humans, tea polyphenols undergo glucuronidation, sulfation, methylation, and ring fission. The peak plasma concentration of EGCG is approximately 1 micromol/L. The possible relevance of each of the proposed mechanisms to human cancer prevention is discussed in light of current bioavailability data for tea polyphenols and the potential limitations of animal models of carcinogenesis. Such discussion, it is hoped, will clarify some misunderstandings of cancer prevention by tea and stimulate new research efforts.
Insights
Tea consumption may prevent cancer by inhibiting tumor growth. Epigallocatechin-3-gallate (EGCG) shows promise, but human bioavailability challenges remain for effective cancer prevention.
Area of Science:
- * Nutritional Science
- * Molecular Biology
- * Cancer Research
Background:
- * Tea (Camellia sinensis) consumption is linked to reduced risk of cancer and heart disease.
- * Animal studies indicate tea constituents inhibit carcinogenesis across various organs.
- * Proposed mechanisms include increased apoptosis and decreased cell proliferation.
Purpose of the Study:
- * To evaluate the cancer-preventive potential of tea polyphenols.
- * To discuss the relevance of proposed molecular mechanisms in human cancer prevention.
- * To address bioavailability limitations of tea compounds in humans.
Main Methods:
- * Review of animal and human cancer cell line studies on tea and its constituents.
- * Analysis of molecular targets inhibited by epigallocatechin-3-gallate (EGCG).
- * Discussion of human bioavailability data for tea polyphenols.
Main Results:
- * EGCG inhibits key signaling pathways and enzymes involved in cancer progression.
- * Effective concentrations in vitro often exceed human plasma levels of EGCG.
- * Tea polyphenols undergo extensive metabolism in humans.
Conclusions:
- * While promising in vitro and in animal models, the direct impact of tea on human cancer prevention requires further investigation.
- * Bioavailability of tea polyphenols like EGCG is a critical factor limiting their efficacy in humans.
- * Clarifying these aspects is crucial for understanding tea's role in cancer prevention and guiding future research.
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