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Mechanisms of cancer prevention by green and black tea polyphenols
Lisa Ann Beltz1, Diana Kay Bayer, Amber Lynn Moss
1Department of Biology, University of Northern Iowa, Cedar Falls, IA 50614, USA. lisa.beltz@uni.edu
Abstract:
Drinking green tea is associated with decreased frequency of cancer development. This review outlines the wide range of mechanisms by which epigallocatechin gallate (ECGC) and other green and black tea polyphenols inhibit cancer cell survival. EGCG suppressed androgen receptor expression and signalling via several growth factor receptors. Cell cycle arrest or apoptosis involved caspase activation and altered Bcl-2 family member expression. EGCG inhibited telomerase activity and led to telomere fragmentation. While at high concentrations polyphenols had pro-oxidative activities, at much lower levels, anti-oxidative effects occurred. Nitric oxide production was reduced by EGCG and black tea theaflavins by suppressing inducible nitric oxide synthase via blocking nuclear translocation of the transcription factor nuclear factor-kappaB as a result of decreased IkappaB kinase activity. Polyphenols up- or down-regulated activity of a number of key enzymes, including mitogen-activated protein kinases and protein kinase C, and increased or decreased protein/mRNA levels, including that of cyclins, oncogenes, and tumor suppressor genes. Metastasis was inhibited via effects on urokinase and matrix metalloproteinases. Polyphenols reduced angiogenesis, in part by decreasing vascular endothelial growth factor production and receptor phosphorylation. Recent work demonstrated that EGCG reduced dihydrofolate reductase activity, which would affect nucleic acid and protein synthesis. It also acted as an aryl hydrocarbon receptor an-tagonist by directly binding the receptor's molecular chaperone, heat shock protein 90. In conclusion, green and black tea polyphenols act at numerous points regulating cancer cell growth, survival, and metastasis, including effects at the DNA, RNA, and protein levels.
Insights
Green tea polyphenols, like epigallocatechin gallate (ECGC), inhibit cancer cell growth and survival through multiple mechanisms. These compounds impact cell cycle, apoptosis, and metastasis, offering potential cancer prevention strategies.
Area of Science:
- Molecular Biology
- Biochemistry
- Cancer Research
Background:
- Green tea consumption is linked to reduced cancer incidence.
- Polyphenols, particularly epigallocatechin gallate (ECGC), are key bioactive compounds in tea.
- Understanding the molecular mechanisms of tea polyphenols is crucial for cancer prevention research.
Purpose of the Study:
- To review the diverse mechanisms by which tea polyphenols inhibit cancer cell survival and proliferation.
- To elucidate the molecular targets and pathways affected by EGCG and other tea polyphenols.
- To consolidate current knowledge on the anti-cancer effects of green and black tea polyphenols.
Main Methods:
- Literature review of studies investigating the effects of tea polyphenols on cancer cells.
- Analysis of molecular mechanisms including gene expression, protein activity, and signaling pathways.
- Examination of effects on cell cycle regulation, apoptosis, telomerase activity, and angiogenesis.
Main Results:
- EGCG suppresses androgen receptor and growth factor signaling, induces cell cycle arrest and apoptosis via caspase activation and Bcl-2 family modulation.
- Polyphenols inhibit telomerase, reduce nitric oxide production by suppressing iNOS, and modulate key enzyme activities (MAPK, PKC).
- Anti-metastatic effects observed through inhibition of urokinase and MMPs; anti-angiogenic effects via VEGF pathway modulation; EGCG acts as an aryl hydrocarbon receptor antagonist.
Conclusions:
- Green and black tea polyphenols exert multi-targeted effects against cancer at the DNA, RNA, and protein levels.
- These compounds regulate critical cancer processes including cell growth, survival, and metastasis.
- The findings support the potential role of tea polyphenols in cancer prevention and therapy.
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