| Literature DB >> 26694345 |
Jing-Shan Xie1,2, Jin Wen3, Xian-Fen Wang4, Jian-Qiao Zhang5, Ji-Fa Zhang6, Yu-Long Kang7, You-Wei Hui8, Wen-Sheng Zheng9, Chun-Suo Yao10.
Abstract
Using potassium hexacyanoferrate (III)-sodium acetate as oxidant, the oxidative coupling reaction of isorhapontigenin and resveratrol in aqueous acetone resulted in the isolation of three new indane dimers 4, 6, and 7, together with six known stilbene dimers. Indane dimer 5 was obtained for the first time by direct transformation from isorhapontigenin. The structures and relative configurations of the dimers were elucidated using spectral analysis, and their possible formation mechanisms were discussed. The results indicate that this reaction could be used as a convenient method for the semi-synthesis of indane dimers because of the mild conditions and simple reaction products.Entities:
Keywords: biomimetic synthesis; hydroxystilbene; indane stilbene dimer; potassium hexacyanoferrate (III)
Mesh:
Substances:
Year: 2015 PMID: 26694345 PMCID: PMC6332065 DOI: 10.3390/molecules201219872
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Structures of compounds 3–11.
Figure 2Analysis of isorhapontigenin oxidation products by K3Fe(CN)6/NaOAc (32% CH3CN/H2O, λ = 230 nm, 1 mL/min).
Figure 3Analysis of resveratrol oxidation products by K3Fe(CN)6/NaOAc (52% MeOH/H2O, λ = 230 nm, 1 mL/min).
1H- and 13C-NMR spectroscopic data of 4 and 5 *.
| Position | 4 | 5 | ||
|---|---|---|---|---|
| δC | δH | δC | δH | |
| 1a | 135.5s | 136.5s | ||
| 2a | 112.4d | 6.82 (d, 1.8) | 112.4d | 6.37 (d, 1.8) |
| 3a | 148.5s | 148.7d | ||
| 4a | 146.9s | 146.7s | ||
| 5a | 115.3d | 6.61 (d, 7.8) | 115.74d | 6.59 (d, 7.8), |
| 6a | 121.1d | 6.57 (dd, 7.8, 1.8) | 120.94d | 6.39 (dd, 7.8, 1.8) |
| 7a | 78.0d | 4.48 (d, 7.2) | 78.7d | 4.35 (d, 9.0) |
| 8a | 61.8d | 3.49 (t, 6.0) | 62.0d | 3.29 (overlap) |
| 9a | 148.7s | 149.5s | ||
| 10a | 123.9s | 123.0s | ||
| 11a | 155.4s | 155.1s | ||
| 12a | 102.6 | 6.08 (d, 1.8) | 102.6d | 6.19 (d, 1.8) |
| 13a | 158.8s | 159.2s | ||
| 14a | 106.0d | 6.07 (br s) | 106.30d | 6.58 (d, 1.8) |
| 1b | 139.0s | 138.8s | ||
| 2b | 112.0d | 6.37 (d, 1.8) | 111.9d | 6.49 (d, 1.8) |
| 3b | 147.4s | 148.5s | ||
| 4b | 145.5s | 145.6s | ||
| 5b | 115.6d | 6.55 (d, 8.4) | 115.69d | 6.62 (d, 7.8) |
| 6b | 120.0d | 6.30 (dd, 8.4, 1.8) | 120.93d | 6.35 (dd, 7.8, 1.8) |
| 7b | 57.4d | 4.08 (d, 4.8) | 56.4d | 4.14 (d, 3.0) |
| 8b | 60.0d | 3.17 (t, 5.4) | 60.2d | 2.74 (t, 3.0) |
| 9b | 150.7s | 151.3s | ||
| 10(14)b | 106.9d | 6.03 (d, 2.4) | 106.33d | 5.75 (d, 2.4) |
| 11(13)b | 159.4s | 159.3s | ||
| 12b | 101.3d | 6.02 (t, 2.4) | 101.2d | 5.96 (t, 2.4) |
| 3a-OCH3 | 56.3q | 3.61 (s) | 56.3q | 3.58 (s) |
| 3b-OCH3 | 56.2q | 3.65 (s) | 56.1q | 3.67 (s) |
* Data (δ) were measured in CD3OD for 1H at 600 MHz, and for 13C at 150 MHz, The assignments were based on DEPT, 1H-1H COSY, HSQC, HMBC, and NOESY experiments, respectively.
Figure 4The significant HMBC (a) and NOESY (b) interactions of 4.
1H- and 13C-NMR spectroscopic data of 6 and 7 *.
| Position | 6 | 7 | ||
|---|---|---|---|---|
| δC | δH | δC | δH | |
| 1a | 125.89s | 125.85s | ||
| 2(6)a | 129.31d | 6.89 (2H, d, 8.5) | 130.72d | 7.06 (2H, d, 8.5) |
| 3(5)a | 115.55d | 6.79 (2H, d, 8.5) | 116.09d | 6.74 (2H, d, 8.5) |
| 4a | 157.12s | 158.03s | ||
| 7a | 41.16d | 3.76 (1H, d, 8.5) | 42.09d | 3.96 (1H, d, 8.1) |
| 8a | 59.35d | 3.01 (1H, t, 4.0) | 61.31d | 3.26 (1H, t, 4.5) |
| 9a | 147.44s | 148.66s | ||
| 10a | 121.28s | 122.54s | ||
| 11a | 154.59s | 155.23s | ||
| 12a | 102.39d | 6.38 (1H, d, 2.0) | 103.18d | 6.30 (1H, d, 1.6) |
| 13a | 158.49s | 159.02s | ||
| 14a | 103.90d | 6.57 (1H, d, 2.0) | 104.72d | 5.95 (1H, brs) |
| 1b | 135.50s | 136.82s | ||
| 2(6)b | 128.40d | 6. 87 (2H, d, 8.5) | 129.21d | 6.84 (2H, d, 8.5) |
| 3(5)b | 114.97d | 6.76 (2H, d, 8.5) | 115.81d | 6.71 (2H, d, 8.5) |
| 4b | 155.72s | 156.51s | ||
| 7b | 53.84d | 4.28 (1H, d, 4.0) | 55.89d | 4.27 (1H, d, 4.5) |
| 8b | 56.70d | 3.52 (1H, dd, 8.5, 4.0) | 58.07d | 3.58 (1H, dd, 8.1, 4.5) |
| 9b | 145.39s | 145.53s | ||
| 10(14)b | 105.13d | 5.96 (2H, d, 2.0) | 106.10d | 6.07 (2H, d, 2.0) |
| 11(13)b | 158.49s | 159.31s | ||
| 12b | 100.75d | 6.17 (1H, t, 2.0) | 101.42d | 6.15 (1H, t, 2.0) |
| 120.33s | 121.73s | |||
* Data (δ) were measured in CD3COCD3 for 1H at 500 MHz, and for 13C at 125 MHz; The assignments were based on DEPT, HSQC, HMBC, and NOESY experiments, respectively.
Figure 5The key HMBC (a) and NOESY (b) correlations of 6.
Figure 6The key HMBC (a) and NOESY (b) correlations of 7.
Scheme 1Plausible radicals of 1 and 2.
Scheme 2Proposed coupling mechanism of compounds 3 and 11.
Scheme 3Proposed coupling mechanism of compounds 4–10.