| Literature DB >> 27187321 |
Xin Zhang1,2,3, Jing Wang4,5, Jiang-Miao Hu6, Ye-Wei Huang7,8, Xiao-Yun Wu9,10,11, Cheng-Ting Zi12,13,14, Xuan-Jun Wang15,16,17,18, Jun Sheng19,20,21.
Abstract
Epigallocatechin gallate (EGCG) is the most abundant component of green tea catechins and has strong physiological activities. In this study, two novel EGCG glycosides (EGCG-G1 and EGCG-G2) were chemoselectively synthesized by a chemical modification strategy. Each of these EGCG glycosides underwent structure identification, and the structures were assigned as follows: epigallocatechin gallate-4''-O-β-d-glucopyranoside (EGCG-G1, 2) and epigallocatechin gallate-4',4''-O-β-d-gluco-pyranoside (EGCG-G2, 3). The EGCG glycosides were evaluated for their anticancer activity in vitro against two human breast cell lines (MCF-7 and MDA-MB-231) using MTT assays. The inhibition rate of EGCG glycosides (EGCG-G1 and EGCG-G2) is not obvious. The EGCG glycosides are more stable than EGCG in aqueous solutions, but exhibited decreasing antioxidant activity in the DPPH radical-scavenging assay (EGCG > EGCG-G2 > EGCG-G1). Additionally, the EGCG glycosides exhibited increased water solubility: EGCG-G2 and EGCG-G1 were 15 and 31 times as soluble EGCG, respectively. The EGCG glycosides appear to be useful, and further studies regarding their biological activity are in progress.Entities:
Keywords: DPPH; anticancer activity; epigallocatechin gallate (EGCG); glycosides; synthesis
Mesh:
Substances:
Year: 2016 PMID: 27187321 PMCID: PMC6274015 DOI: 10.3390/molecules21050620
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Structures of EGCG (1), EGCG-G1 (2), and EGCG-G2 (3).
1H-NMR and 13C-NMR data of EGCG-G1 and EGCG-G2 in DMSO-d6 a.
| C Position | EGCG-G1 (δ1) | EGCG-G2 (δ2) | ||
|---|---|---|---|---|
| δC | δH | δC | δH | |
| EGCG | ||||
| 2 | 77.3 | 5.03 (s) | 77.2 | 5.03 (s) |
| 3 | 69.3 | 5.37 (br s) | 69.4 | 5.38 (br s) |
| 4 | 25.6 | 2.89–2.69 (m) | 25.6 | 2.99–2.89 (m) |
| 2.58–2.49 (m) | 2.70–2.66 (m) | |||
| 5 | 156.7 | 156.7 | ||
| 6 | 95.7 | 5.94 (d, | 95.7 | 5.94 (d, |
| 7 | 155.3 | 155.3 | ||
| 8 | 94.2 | 5.84 (d, | 94.3 | 5.84 (d, |
| 9 | 156.5 | 156.5 | ||
| 10 | 92.0 | 92.1 | ||
| 1′ | 125.6 | 125.6 | ||
| 2′/6′ | 105.6 | 6.52 (s) | 105.8 | 6.51 (s) |
| 3′/5′ | 150.3 | 150.3 | ||
| 4′ | 135.6 | 135.6 | ||
| 1′′ | 132.6 | 132.6 | ||
| 2′′/6′′ | 108.6 | 6.82 (s) | 108.6 | 6.80 (s) |
| 3′′/5′′ | 149.8 | 149.8 | ||
| 4′′ | 137.1 | 137.1 | ||
| COO- | 164.7 | 164.7 | ||
| Glucose (-G1) | ||||
| 1′′′ | 106.0 | 4.87 (d, | 106.0 | 4.70 (d, |
| 2′′′ | 75.1 | 3.33–3.15 (m) | 75.8 | 3.30–3.22 (m) |
| 3′′′ | 76.4 | 5.25–5.24 (m) | 76.7 | 5.14–5.13 (m) |
| 4′′′ | 73.6 | 3.33–3.15 (m) | 73.6 | 3.30–3.22 (m) |
| 5′′′ | 77.2 | 4.59–4.57 (m) | 77.1 | 4.56–4.55 (m) |
| 6′′′ | 60.4 | 3.60–3.58 (m) | 60.4 | 3.61–3.57 (m) |
| Glucose (-G2) | ||||
| 1′′′′ | 104.6 | 4.46 (d, | ||
| 2′′′′ | 75.7 | 3.30–3.22 (m) | ||
| 3′′′′ | 76.1 | 5.24–5.23 (m) | ||
| 4′′′′ | 73.6 | 3.30–3.22 (m) | ||
| 5′′′′ | 77.1 | 4.61–4.60 (m) | ||
| 6′′′′ | 61.2 | 3.61–3.57 (m) | ||
a 1H-NMR (500 MHz), 13C-NMR (125 MHz).
Figure 2HMBC correlations of EGCG-G1 (2) and EGCG-G2 (3).
Figure 3In vitro anticancer activity of EGCG glycosides: EGCG-G1 (2) and EGCG-G2 (3). MTT cell viability assays of human breast cancer cell lines MCF-7 (A) and MDA-MB-231 (B) treated with cisplatin (CDDP), EGCG-G1 (2) and EGCG-G2 (3). The cells were seeded in 96-well plates and, after overnight incubation, treated with various agent concentrations for 48 h. The viability values are represented as percentages with respect to the untreated cells (regarded as 100% viability). The bars demonstrate the means of triplicate experiments with SD.
Figure 4DPPH radical–scavenging activities of EGCG and EGCG glycosides: EGCG-G1 (2) (100 μL of 4.04, 8.07, 16.13, 24.20, 241.95, 483.90, 873.60 μM), EGCG-G2 (3) (100 μL of 3.20, 6.39, 12.78, 19.17, 191.70, 383.40, 511.20 μM) or EGCG (100 μL of 5.46, 10.92, 21.84, 32.76, 327.60, 655.20, 870.4 μM) was mixed with 0.13 μM 1,1-diphenyl-2-picrylhydrazyl (100 μL) in darkness at room temperature for 30 min, and the absorbance was monitored at 519 nm. Each value is the mean ± standard deviation (n = 3).
Figure 5H2O2 concentrations of EGCG and EGCG glycosides: EGCG (1), EGCG-G1 (2) and EGCG-G2 (3), tested using a H2O2 Quantitative Assay Kit (Water-Compatible).
Solubilities of EGCG and EGCG glycosides.
| Compound | Solubility in Water a (mM) | Relative Solubility |
|---|---|---|
| EGCG | 16.05 ± 1.23 | 1 |
| EGCG-G1 | 240.93 ± 1.91 | 15 |
| EGCG-G2 | 504.73 ± 0.57 | 31 |
a. Mean ± standard deviation (n = 3).