| Literature DB >> 30301463 |
Abdulrhman Alsayari1, Lucas Kopel2, Mahmoud Salama Ahmed3, Hesham S M Soliman4, Sivakumar Annadurai1, Fathi T Halaweish5.
Abstract
BACKGROUND: Cucumis prophetarum var. prophetarum is used in Saudi folk medicine for treating liver disorders and grows widely between Abha and Khamis Mushait City, Saudi Arabia.Entities:
Keywords: Anticancer; Bioassay-guided fractionation; Breast cancer; Cucumis prophetarum var. prophetarum; Cucurbitacins; Preliminary SAR
Mesh:
Substances:
Year: 2018 PMID: 30301463 PMCID: PMC6178269 DOI: 10.1186/s12906-018-2295-5
Source DB: PubMed Journal: BMC Complement Altern Med ISSN: 1472-6882 Impact factor: 3.659
Cytotoxic effects of the tested fractions
| IC50 a (μg/mL) | ||||||
|---|---|---|---|---|---|---|
| Fractions | MCF-7 | MDA MB 231 | A2780 | A2780 CP | HepG2 | HCT-116 |
| Hexane fraction | 19.7 | 0.76 | 7.15 | 20.27 | 55.4 | 25 |
| Ethyl acetate fraction | 17.5 | 0.35 | 2.82 | 19.2 | 28.5 | 14.2 |
| n-Butanol fraction | 218.4 | 43 | 94.01 | 273 | 358.5 | 169.5 |
| Water fraction | > 1000 | > 1000 | > 1000 | > 1000 | > 1000 | > 1000 |
| Fraction I | 3.5 | 0.15 | 4.9 | 5.9 | 0.27 | 0.15 |
| Fraction III | 6.80 | 0.12 | 20.5 | 17.5 | 0.52 | 0.65 |
Inhibitory effects of the fractions from the extract of Cucumis prophetarum var. prophetarum fruits on the proliferation of MCF7, MDA-MB-231, HCT-116, A2780, A2780CP, and HepG2. Cell were treated with 0–1000 μg/ml. a IC50: is the concentration that inhibited cell proliferation by 50%. n = 8
Fig. 1Chemical Structures of Isolated Cucurbitacins
1H-NMR spectral data for compounds 2, 3, 4 and 5 in CDCl3a (400 MHz)
| H | (2) | (3) | (4) | (5) |
|---|---|---|---|---|
| 1 α | 2.32 ddd (3.3/ 5.8 /12.5) | 2.24 m | 2.33 ddd (3.3/ 5.8 /12.5) | s.o. |
| 1β | 1.21 d (13.0) | 1.21 d (12.8) | 1.21 m | 1.15 d (6.30) |
| 2 | 4.43 dd (4.44/12.9) | 4.43 dd (6.0/12.8) | 4.46 dd (6.5/12.8) | 3.59 m |
| 3 | – | – | – | 2.98 d (9.0) |
| 4 | – | – | – | – |
| 5 | – | – | – | – |
| 6 | 5.80 d(5.6) | 5.78 d br (5.6) | 5.79 br m | 5.73 d (5.4) |
| 7α | s.o. | s.o. | 1.94 m | s.o |
| 7β | 2.41 dm | 2.41 dd (7.5/19.1) | 2.40 dd (8.2/19.8) | 2.39 m |
| 8 | 1.98 br d (7.8) | 2.01 d (6.8) | 1.97 d br (7.9) | 1.93 br d (7.6) |
| 9 | – | – | – | – |
| 10 | 2.75 br d (13.1) | 2.50 d (14.3) | 2.78 d (13.7) | 2.62 br d (14.4) |
| 11 | – | – | – | |
| 12α | 3.25 d (14.4) | 3.32 d (14.5) | 3.32 d (14.3) | 3.18 d (14.4) |
| 12β | 2.69 d (14.7) | 2.76 d (12.7) | 2.7 d (14.6) | 2.52 d (6.81) |
| 13 | – | – | – | – |
| 14 | – | – | – | – |
| 15α | 1.88 dd(9.4/13.5) | s.o | s.o. | s.o. |
| 15β | 1.45 d (5.8) | 1.93 dd (11.7/19.8) | 1.84 dd (8.2/13.1) | 1.85 m |
| 16 | 4.36 m | 4.92 m | 4.33 m br | 4.33 m |
| 17 | 2.51 d (7.3) | 3.17 d (6.45) | 2.55 d (6.88) | 2.48 d (7.03) |
| 18 | 0.99 s | 0.66 s | 0.98 s | 0.96 s |
| 19 | 1.08 s | 1.05 s | 1.8 s | 1.27 s |
| 20 | – | – | – | – |
| 21 | 1.43 s | 2.16 s | 1.39 s | 1.55 s |
| 22 | – | – | – | |
| 23 | 6.48 d (15.6) | – | 6.60 d (15.1) | 6.46 d (15.6) |
| 24 | 7.07 d (15.6) | – | 7.14 d (15.1) | 7.07 d (15.6) |
| 25 | – | – | – | – |
| 26 | 1.55 s | – | 1.35 s | 1.57 s |
| 27 | 1.57 s | – | 1.35 s | 1.55 |
| 28 | 1.29 s | 1.27 s | 1.30 s | 1.27 s |
| 29 | 1.35 s | 1.33 s | 1.33 s | 1.20 s |
| 30 | 1.36 s | 1.37 s | 1.34 s | 1.10 s |
| O2CMe | 2.02 s | – | – | 2.02 s |
a j values in Hz are given in parentheses, (so) signal obscured, (s) singlet, (d) doublet, (dd) doublet of doublets, (m) multiplet, (br) broad
13C-NMR spectral data for compounds 2, 3, 4 and 5 in CDCl3
| C | (2)a | (3)a | (4)a | (5) b |
|---|---|---|---|---|
| 1 | 36.0 | 35.9 | 35.9 | 34.0 |
| 2 | 71.6 | 71.5 | 71.6 | 71.4 |
| 3 | 213.6 | 212.9 | 213.1 | 81.1 |
| 4 | 50.2 | 50.2 | 50.2 | 50.8 |
| 5 | 140.2 | 140.3 | 140.3 | 140.7 |
| 6 | 120.4 | 120.1 | 120.2 | 120.5 |
| 7 | 23.8 | 23.9 | 23.8 | 24.1 |
| 8 | 42.3 | 42.7 | 42.3 | 42.7 |
| 9 | 48.4 | 48.6 | 48.3 | 48.4 |
| 10 | 33.7 | 33.6 | 33.7 | 33.4 |
| 11 | 212.3 | 211.1 | 212.3 | 213.1 |
| 12 | 48.6 | 49.8 | 48.6 | 48.7 |
| 13 | 50.6 | 48.9 | 50.7 | 51.7 |
| 14 | 48.1 | 44.9 | 48.2 | 48.1 |
| 15 | 45.3 | 45.4 | 45.4 | |
| 16 | 71.2 | 71.4 | 71.3 | 71.1 |
| 17 | 58.1 | 67.5 | 57.3 | 58.2 |
| 18 | 19.8 | 19.7 | 19.9 | 19.9 |
| 19 | 20.0 | 19.9 | 20.1 | 20.4 |
| 20 | 78.2 | 208.2 | 78.1 | 78.4 |
| 21 | 23.9 | 31.5 | 23.9 | 24.7 |
| 22 | 202.5 | – | 202.6 | 202.6 |
| 23 | 120.3 | – | 118.9 | 119.4 |
| 24 | 151.9 | – | 155.7 | 152.0 |
| 25 | 79.3 | – | 71.1 | 79.4 |
| 26 | 26.3 | – | 29.5 | 26.5 |
| 27 | 25.9 | – | 29.3 | 26.1 |
| 28 | 29.3 | 21.2 | 28.9 | 21.7 |
| 29 | 21.2 | 29.3 | 21.2 | 23.8 |
| 30 | 18.8 | 19.9 | 19.2 | 19.1 |
| CH3COO | 170.3, 21.9 | 170.4, 21.6 |
a Measured at 100 MHz. b Measured at 150 MHz
NMR spectroscopic data of compound 5
| NO | 13C/ppma | 1H/ppmb multiplicities (J/Hz) | HMBC |
|---|---|---|---|
| 1 | 34.0 | s.o., 1.15 d (6.30) | C-2, C-19, C-10, C-3,C-5,C-8,C-9 |
| 2 | 71.4 | 3.59 m | C-1, C-3,C-4,C-10 |
| 3 | 81.1 | 2.98 d (9.08) | C-28,C-29,C-1 |
| 4 | 50.8 | – | C-28,C-29,C-6 |
| 5 | 140.7 | – | C-7,C-1,C-10 |
| 6 | 120.5 | 5.73 d (5.49) | C-4,C-5,C-7,C-10,C-8 |
| 7 | 24.1 | s.o., 2.39 m | C-6,C-8 |
| 8 | 42.7 | 1.93 br d (7.66) | C-30,C-19,C-7,C-15,C-6,C-10 |
| 9 | 48.4 | – | C-19,C-12,C-10,C-8 |
| 10 | 33.4 | 2.62 br d (14.43) | C-6,C-8,C-19,C-1 |
| 11 | 213.1 | – | C-12,C-19 |
| 12 | 48.7 | 3.18 d (14.49), 2.52 d (6.81) | C-18, C-17, C-11, C-13 |
| 13 | 51.7 | – | C-12, C-15, C-17, C-18, C-30 |
| 14 | 48.1 | – | C-30, C-18, C-12, C-7, C-16,C-8, C-15 |
| 15 | 45.4 | s.o., 1.85 m | C-30, C-8 |
| 16 | 71.1 | 4.33 m | C-17, C-15 |
| 17 | 58.2 | 2.48 d (7.03) | C-18, C-21, C-12, C-16 |
| 18 | 19.9 | 0.96 s | C-12, C-13, C-14, C-17 |
| 19 | 20.4 | 1.27 s | C-10, C-8 |
| 20 | 78.4 | – | C-21, C-16, C-17 |
| 21 | 24.7 | 1.55 s | – |
| 22 | 202.6 | – | C-24, C-23 |
| 23 | 119.4 | 6.46 d (15.6) | C-24 |
| 24 | 152.0 | 7.07 d (15.6) | C-27, C-26, C-23 |
| 25 | 79.4 | – | C27, C26, C23 |
| 26 | 26.5 | 1.57 s | C-27, C-24 |
| 27 | 26.1 | 1.55 s | C-26 |
| 28 | 21.7 | 1.27 s | C-29 |
| 29 | 23.8 | 1.20 s | C-28 |
| 30 | 19.1 | 1.10 s | C-15, C-21, C-8 |
aMeasured at 150 MHz, b Measured at 400 MHz
Fig. 2ORTEP representation of Compound 5
Fig. 3Inhibitory effects of n-hexane, ethyl acetate, n-butanol and aqueous fractions on proliferation of cancer cells (a-MCF-7; b-MDA-MB-231; c-A2780; d-A2780CP; e-HepG2 and f-HCT-116). Cells were treated with 0-1000 µg/ml of each fraction. MTT assay was used to measure the cell viability % after 48 hrs of treatment. The error bars indicate SD of n = 8 per concentration
Fig. 4Inhibitory effects of Cucurbitacins e, b, d, f 25-O-acetate and hexanorcucurbitacin D on proliferation of cancer cells (a-MCF-7; b-MDA-MB-231; c-A2780; d-A2780CP; e-HCT-116 and f-HepG2). Cells were treated with 0-100 µM of each compound. MTT assay was used to measure the cell viability % after 48 hrs of treatment. The error bars indicate SD of n = 8 per concentration
Cytotoxic effects of tested compounds
| IC50 (μM) | ||||||
|---|---|---|---|---|---|---|
| Isolated compounds | MCF-7 | MDA MB 231 | A2780 | A2780 CP | HepG2 | HCT-116 |
| Cucurbitacin E (1) | 7.2 | 2.1 | 5.4 | 15.9 | 3.4 | 3.4 |
| Cucurbitacin B (2) | 16.0 | 0.96 | 7.6 | 14.2 | 1.7 | 1.7 |
| Hexanor-Cucurbitacin D (3) | 47.9 | 12.0 | > 100 | > 100 | 37.8 | 30.7 |
| Cucurbitacin D (4) | 26.7 | 4.0 | 21.6 | 6.9 | 5.0 | 7.6 |
| Cucurbitacin F 25-O-acetate (5) | 18.4 | 3.4 | 15.8 | 15.2 | 10.2 | 11.2 |
| Dihydrocucurbitacin D (6) | – | > 100 | – | – | – | – |
| Isocucurbitacin D (7) | – | 1.0 | – | – | – | – |
| Cucurbitacin E glucoside (8) | – | 27.3 | – | – | – | – |
Inhibitory effects of compounds from the ethyl acetate extract fraction of Cucumis prophetarum var. prophetarum fruits on the proliferation of MCF7, MDA-MB-231, HCT-116, A2780, A2780CP, and HepG2. Cell were treated with 0–100 μM. a IC50 is the concentration that inhibited cell proliferation by 50%. n = 8