| Literature DB >> 20162003 |
Takashi Yoshida1, Yoshiaki Amakura1, Morio Yoshimura1.
Abstract
Plant tannins, including hydrolysable and condensed varieties, are well known antioxidants in medicinal plants, foods, and edible fruits. Their diverse biological properties and potential for disease prevention have been demonstrated by various in vitro and in vivo assays. A number of ellagitannins, the largest group of hydrolysable tannins, have been isolated from dicotyledoneous angiosperms and characterized. This diverse class of tannins is sub-grouped into simple ellagitannins, C-glycosidic ellagitannins, complex tannins (condensates of C-glycosidic tannins with flavan-3-ol), and oligomers up to pentamers. This review outlines and describes the chemotaxonomic significance of structural features in various types of ellagitannins found in plants belonging to the Myrtaceae, Onagraceae, and Melastomataceae families, which are all included in the order Myrtales. Any biological activities that have been reported, including antitumor and antibacterial effects as well as enzyme inhibition, are also reviewed.Entities:
Keywords: C-glycosidic ellagitannins; Myrtales; biological activity; ellagitannins; oligomeric ellagitannins
Mesh:
Substances:
Year: 2010 PMID: 20162003 PMCID: PMC2820991 DOI: 10.3390/ijms11010079
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 6.208
Figure 1.Structures of monomeric ellagitannins 1–15.
Ellagitannin monomers found in the Myrtales.
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Figure 2.Structures of C-glycosidic ellagitannins 16–29.
C-Glycosidic ellagitannins in the order Myrtales.
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Figure 3.(a) Structures of complex tannins 30–40. (b) Structures of complex tannins 41–44.
Figure 4.General oligomerization mode for the types 1 and 2. (1) examples of coupling mode for formation of valeoyl or its equivalent unit by C-O coupling. (2) macrocyclic dimer (double coupling for HHDP and galloyl).
Figure 5.Structures of C-glycosidic ellagitannin dimers 45–48.
Figure 6.(a) Structures of ellagitannin oligomers 49–59. (b) Structures of ellagitannin oligomers 60 and 61.
Figure 7.(a) Structures of ellagitannin oligomers 62 and 66. (b) Structures of ellagitannin oligomers 63–65.
Figure 9.Structures of ellagitannin oligomers 67 and 68.
Figure 8.Coupling modes (a–d) to melasquanins A (62)–D (65).
Figure 10.Coupling mode of nobotanins.
Figure 11.(a) Structures of ellagitannin oligomers 72 and 73. (b) Structures of ellagitannin oligomers 74–77.
Figure 12.Chemical degradation of nobotanin B (70).
Figure 13.HMBC data for melasquanin A (62).
Biological activities of ellagitannins found in the Myrtales.
| Anti-Herpes simplex virus type 2 activity | casuarinin ( | [ |
| Apoptosis in human breast adenocarcinoma MCF-7 cells | casuarinin ( | [ |
| Antileishmanial activity | casuarinin ( | [ |
| castalagin ( | [ | |
| Antihypertensive activity (rats) | castalagin ( | [ |
| corilagin, chebulinic acid ( | ||
| α-Glucosidase inhibitor | casuarictin ( | [ |
| chebulagic acid ( | [ | |
| Dual inhibitor against COX and 5-LOX | chebulagic acid ( | [ |
| Anti-inflammation in LPS-induced RAW 264.7 cells | chebulagic acid ( | [ |
| Effect on carageenan-induced inflammation | punicalagin ( | [ |
| Antioxidant and hepatoprotective effects on acetaminophen-induced liver damage in rats | punicalagin ( | [ |
| Effect against bleomycin-induced genotoxicity in Chinese hamster ovary cells | punicalagin ( | [ |
| Chemopreventive effect on H-ras-transformed NIH3T3 cells | punicalagin ( | [ |
| Inhibitory effect on HIV-1 reverse transcriptase | punicalin ( | [ |
| Inhibitory effect on CCl4-induced hepatotoxicity | punicalagin ( | [ |
| Activators of glucose transport in fat cells | lagerstroemin ( | [ |
| Activation of insulin receptors | lagerstroemin ( | [ |
| Insulin-like glucose uptake-stimulatory/inhibitory and adiposities differentiation inhibitory activity in 3T3-L1 cells | lagerstroemin ( | [ |
| Host-mediated antitumor effect | oenothein B ( | [ |
| Host-mediated antitumor | oenothein B ( | [ |
| woodfordins A-C ( | ||
| Inhibitor of deoxyribonucleic acid topoisomerase II | woodfruticosin [= woodfordin C ( | [ |
| EBV DNA polymerase inhibitory effect | oenothein B ( | [ |
| eugeniflorins D1, D2 ( | ||
| 5α-reductase, aromatase inhibitory effect | oenotheins A ( | [ |
| Induction of neutral endopeptidase activity in PC-3 cells | oenothein B ( | [ |
| cuphiin D1 ( | [ | |
| Induce apoptosis in HL-60 cells | cuphiin D1 ( | [ |
| Poly (ADP-ribose) glycohydrolase inhibition | nobotanins B ( | [ |
L. speciosa: Lagerstroemia speciosa.