| Literature DB >> 25867827 |
Fuqin Guan1,2, Qizhi Wang3, Ming Wang4, Yu Shan5, Yu Chen6, Min Yin7, Youyi Zhao8, Xu Feng9,10, Fei Liu11, Jianhua Zhang12.
Abstract
Salicornia bigelovii Torr. has been consumed not only as a popular kind of vegetable, but also as a medicinal plant to treat hypertension, cephalalgia, scurvy and cancer. The present study was designed to investigate its chemical components and cytotoxic activity. A new noroleanane-type triterpene saponin, bigelovii C (1), was separated and purified from Salicornia bigelovii Torr., along with four known triterpene saponins 2-5. The structure of bigelovii C was elucidated as 3-O-(6-O-butyl ester)-β-D-glucuropyranosyl-23-aldehyde-30-norolean-12, 20 (29)-dien-28-oic acid-28-O-β-D-glucopyranoside, according to various spectroscopic analysis and chemical characteristics. Besides Compounds 3 and 5, bigelovii C had potent cytotoxicity against three human cancer cell lines, MCF7 (breast cancer), Lovo (colon cancer) and LN229 (glioblastoma), especially MCF7. Bigelovii C inhibited the growth of MCF7 cells in dose- and time-dependent manners. Flow cytometry analysis revealed that the percentage of apoptotic cells significantly increased upon bigelovii C treatment. Rh123 staining assay indicated that bigelovii C reduced the mitochondrial membrane potential. The mechanism of cell death by bigelovii C may be attributed to the downregulation of Bcl-2 and upregulation of Bax, cleaved caspase-9, caspase-7 and PARP. These results suggested that bigelovii C may impart health benefits when consumed and should be regarded as a potential chemopreventative agent for cancer.Entities:
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Year: 2015 PMID: 25867827 PMCID: PMC6272276 DOI: 10.3390/molecules20046419
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Negative and positive mode of ESI-MS spectra of Compound 1.
NMR spectroscopic data for Compound 1 in pyridine-d5 (1H: 500 MHz, 13C: 125 MHz).
| No. | δC, Type | δH ( | 1H-1HCOSY | ROESY | HMBC |
|---|---|---|---|---|---|
| 1 | 38.1, CH2 | 1.48, 0.93, m | 2 | 2 | |
| 2 | 25.2, CH2 | 2.16, 1.85, m | 1, 3 | 1,3 | |
| 3 | 82.2, CH | 4.14, dd (11.6, 4.5) | 2 | 2, 23, 1', 5 | 23, 1', 5, 24 |
| 4 | 55.4, C | ||||
| 5 | 47.9, CH | 1.35, dd (7.8, 7.2) | 6 | 3, 6, 23 | |
| 6 | 20.4, CH2 | 1.37, 0.98, m | 5, 7 | 5, 7 | |
| 7 | 32.4, CH2 | 1.40, 1.16, m | 6 | 6 | |
| 8 | 40.2, C | ||||
| 9 | 47.9, CH | 1.63, m | 11 | 11 | 10, 8, 11, 25, 26 |
| 10 | 36.1, C | ||||
| 11 | 23.6, CH2 | 1.84, m | 9, 12 | 9, 12 | |
| 12 | 123.3, CH | 5.40, t (3.5) | 11 | 11 | 14, 18 |
| 13 | 143.5, C | ||||
| 14 | 42.1, C | ||||
| 15 | 28.1, CH2 | 2.23, 1.11, m | 16 | 16 | |
| 16 | 23.5, CH2 | 2.14, 2.01, m | 15 | 15 | 18 |
| 17 | 47.3, C | ||||
| 18 | 47.6, CH | 3.08, dd (8.7, 4.65) | 19 | 19 | 20 |
| 19 | 41.6, CH2 | 2.57, m | 18 | 18 | |
| 20 | 148.4, C | ||||
| 21 | 30.1, CH2 | 2.19, 2.03, m | 22 | 22 | |
| 22 | 37.6, CH2 | 1.98, 1.68, m | 21 | 21 | 20 |
| 23 | 206.8, CH | 9.74, s | 3, 5 | ||
| 24 | 10.4, CH3 | 1.28, s | 25 | 4, 3, 23 | |
| 25 | 15.6, CH3 | 0.83, s | 24 | 10, 1 | |
| 26 | 17.4, CH3 | 1.01, s | 7, 8 | ||
| 27 | 26.0, CH3 | 1.20, s | 15, 8 | ||
| 28 | 175.6, C | ||||
| 29 | 107.2, CH2 | 4.74, 4.67, s | 19, 21 | ||
| 3-O-GlcA | |||||
| GlcA-1' | 105.4, CH | 4.87, d (7.75) | 2' | 2', 3 | 3 |
| GlcA-2' | 75.0, CH | 3.94, d (8.5) | 3', 1' | 3', 1' | 1', 3' |
| GlcA-3' | 77.8, CH | 4.16, t (8.5, 7.2) | 2', 4' | 2', 4' | 1' |
| GlcA-4' | 72.9, CH | 4.43, t (7.2, 9.75) | 3', 5' | 3', 5' | 6' |
| GlcA-5' | 77.3, CH | 4.50, d (9.75) | 4' | 4' | 6', 4', 1' |
| GlcA-6' | 170.1, C | ||||
| 28- | |||||
| Glc-1'' | 95.8, CH | 6.23, d (8.1) | 2'' | 2'' | 28 |
| Glc-2'' | 74.0, CH | 4.12, d (8.55) | 3'', 1'' | 3'', 1'' | 1'', 3'' |
| Glc-3'' | 78.8, CH | 4.22, t (8.55, 7.85) | 2'', 4'' | 2'', 4'' | 4'', 2'' |
| Glc-4'' | 71.2, CH | 4.27, t (7.85, 9.95) | 5'', 3'' | 5'', 3'' | 5'', 6'' |
| Glc-5'' | 79.2, CH | 3.97, d (9.95) | 4'', 6'' | 4'', 6'' | |
| Glc-6'' | 62.3, CH2 | 4.41, brd (11.8) | 5'' | 5'' | |
| 6'- | |||||
| 1''' | 65.0, CH2 | 4.26, t (7.35) | 2''' | 2''' | 6', 2''', 3''' |
| 2''' | 30.8, CH2 | 1.57, m | 1''', 3''' | 1''', 3''' | 4''', 3''' |
| 3''' | 19.2, CH2 | 1.33, m | 2''', 4''' | 2''', 4''' | 1''', 4''' |
| 4''' | 13.7, CH3 | 0.76, t (7.4) | 3''' | 3''' | 2''', 3''' |
Figure 2Key HMBC correlations for Compound 1 and the chemical structures of Compounds 2–5 isolated from S. bigelovii Torr.
In vitro cytotoxicity of Compounds 1–5 against MCF7, Lovo and LN229 cells (IC50, μM) for 72 h.
| Compounds | MCF7 | Lovo | LN229 |
|---|---|---|---|
| 12.6 ± 2.49 | 21.35 ± 2.55 | 29.66 ± 6.99 | |
| >100 | >100 | >100 | |
| 13.42 ± 1.22 | 22.15 ± 3.61 | 31.18 ± 4.72 | |
| >100 | >100 | >100 | |
| 3.52 ± 1.19 | 11.45 ± 2.58 | 10.71 ± 2.26 | |
| Cis-platinum | 14.73 ± 5.30 | 51.90 ± 7.15 | 55.24 ± 7.82 |
Figure 3Bigelovii C had potent cytotoxic activity on MCF-7 cells. (A) Cells were treated with bigelovii C for 24 h, 48 h and 72 h. Cytotoxicity was evaluated by the MTT assay. * p < 0.05, ** p < 0.01 and *** p < 0.001, compared with the control group. (B) Morphological observation of MCF-7 cells treated with 12.5 μM, 25 μM and 50 μM bigelovii C for 24 h under optical microscopic observation (100×).
Figure 4Flow cytometry analysis of MCF7 cell apoptosis (A) and mitochondrial membrane potential (B). * p < 0.05, ** p < 0.01 and *** p < 0.001, compared with the control group.
Figure 5Effects of bigelovii C on the expression of cleaved caspase-7, cleaved caspase-9, cleaved PARP, Bcl-2 and Bax in MCF7 cells. * p < 0.05, ** p < 0.01 and *** p < 0.001, compared with the control group.