| Literature DB >> 19725977 |
Subhash Padhye1, Aamir Ahmad, Nikhil Oswal, Fazlul H Sarkar.
Abstract
Garcinol, harvested from Garcinia indica, has traditionally been used in tropical regions and appreciated for centuries; however its biological properties are only beginning to be elucidated. There is ample data to suggest potent antioxidant properties of this compound which have been used to explain most of its observed biological activities. However, emerging evidence suggests that garcinol could be useful as an anti-cancer agent, and it is increasingly being realized that garcinol is a pleiotropic agent capable of modulating key regulatory cell signaling pathways. Here we have summarized the progress of our current research knowledge on garcinol and its observed biological activities. We have also provided an explanation of observed properties based on its chemical structure and provided an insight into the structure and properties of chalcones, the precursors of garcinol. The available data is promising but more detailed investigations into the various properties of this compound, particularly its anti-cancer activity are urgently needed, and it is our hope that this review will stimulate further research for elucidating and appreciating the value of this nature's wonder agent.Entities:
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Year: 2009 PMID: 19725977 PMCID: PMC2743703 DOI: 10.1186/1756-8722-2-38
Source DB: PubMed Journal: J Hematol Oncol ISSN: 1756-8722 Impact factor: 17.388
Figure 1Structure of Garcinol, Curcumin and compounds extracted from .
Figure 2A. Structural similarity between chalcone and garcinol moieties. B. Formation of chalcone and migration of ring B.
Figure 3A. Scheme of synthesis of chalcones. B. s-cis and s-trans conformation of chalcones.
Figure 4Structures of some therapeutically active chalcone compounds.
Figure 5Fluorinated chalcone: as anti-inflammatory agent.
Summary of reported biological activities of garcinol
| Efficient scavenging of free radicals | Yamaguchi | |
| Yamaguchi | ||
| Inhibition of NO and H2O2 production | Sang | |
| Inhibition of NO and iNOS Generation | Sang | |
| Inhibition of iNOS and COX-2 expression | Liao | |
| Inhibition of NO accumulation | Liao | |
| Activity against methicillin-resistant | Iinuma | |
| Rukachaisirikul | ||
| Efficient killing of | Chatterjee | |
| Chatterjee | ||
| Chemoprevention of colon tumorigenesis | Tanaka | |
| Induction of caspase-3-mediated apoptosis | Pan | |
| Loss of mitochondrial potential and activation of caspase-3 | Matsumoto | |
| Induction of apoptosis | Balasubramanyam | |
| Inhibition of tongue carcinogenesis | Yoshida | |
| Modulation of arachidonic acid metabolism and inhibition of STAT-1 | Hong | |
| Selective killing of colon cancer cells | Hong | |
| Induction of apoptosis and inhibition of cell invasion | Liao |