| Literature DB >> 29587405 |
Fei Ye1,2, Zheng-Dan Zhu3,4, Yu-Cheng Gu5, Jia Li6,7,8, Wei-Liang Zhu9,10,11, Yue-Wei Guo12,13,14.
Abstract
A new prenyleudesmane type diterpene, sinupol (8), and a new capnosane type diterpenoid, sinulacetate (9), were isolated from the Xisha soft coral Sinularia polydactyla along with five known related diterpenes (4-7 and 10). Their structures, including absolute configurations, were determined by extensive spectroscopic analysis, the comparison of their NMR data with those of related compounds, and time-dependent density functional theory electronic circular dichroism (TDDFT ECD) calculations. Both new compounds (8 and 9) exhibited promising inhibitory activity against protein tyrosine phosphatase 1B (PTP1B), a potential drug target for the treatment of type II diabetes and obesity.Entities:
Keywords: PTP1B inhibitory activity; Sinularia polydactyla; diterpenoids
Mesh:
Substances:
Year: 2018 PMID: 29587405 PMCID: PMC5923390 DOI: 10.3390/md16040103
Source DB: PubMed Journal: Mar Drugs ISSN: 1660-3397 Impact factor: 5.118
Figure 1Structures of compounds 1–14.
Figure 2Key HMBC and 1H–1H COSY correlations of compounds 8 and 9.
1H (500 MHz) and 13C (125 MHz) NMR data (δ in ppm, J in Hz) for compounds 8 and 9.
| Position | 8 | 9 | ||
|---|---|---|---|---|
| 1 | 1.33, m | 38.1 | - | 140.9 |
| 2 | 1.97, m | 23.2 | 5.09, d (9.5) | 132.9 |
| 3 | 5.35, brs | 121.2 | 3.48, t (9.5) | 49.8 |
| 4 | - | 135.9 | - | 142.1 |
| 5 | 1.90,dd (12.7, 1.1) | 46.8 | 5.34, t (3.5) | 123.9 |
| 6α | 1.28, ddd (12.7, 11.0, 10.4) | 29.0 | 2.22, m | 37.1 |
| 7 | 2.02, td (10.4, 3.9) | 48.9 | 2.69, dt (9.5, 8.9) | 58.2 |
| 8 | 1.53, m | 26.8 | - | 150.5 |
| 9 | 1.40, dt (12.9, 3.9) | 40.3 | 2.19, m | 28.9 |
| 10 | - | 32.4 | 2.22, m | 28.7 |
| 11 | - | 142.2 | 5.65, dd (6.5, 10.1) | 129.7 |
| 12 | 6.17, d (11.2) | 123.8 | - | 132.5 |
| 13 | 6.96, dd (11.2, 15.3) | 123.0 | 4.95, d (10.2) | 77.1 |
| 14 | 6.13, d (15.3) | 141.9 | 6.02, d (10.2) | 73.6 |
| 15 | - | 69.9 | 2.50, m | 28.6 |
| 16 | 1.63, s | 21.2 | 1.08, s | 23.7 |
| 17 | 0.84, s | 15.7 | 1.03, s | 26.4 |
| 18 | 1.78, s | 14.9 | 1.55, s | 15.5 |
| 19 | 1.59, s | 30.9 | 4.87, brs | 113.3 |
| 20 | 1.59, s | 30.9 | 1.66, s | 17.8 |
| 13-OAc | - | - | - | 170.5 |
| 13-OAc | - | - | 2.01, s | 21.3 |
| 14-OAc | - | - | - | 169.8 |
| 14-OAc | - | - | 2.05, s | 21.3 |
Means measured in C5D5N; means measured in CDCl3.
Figure 3Key NOE correlations of compounds 8 and 9.
Comparison of multiplicity and coupling constants of H-3 and H-7 in 9 and 12–14.
| 9 | 12 | 13 | 14 | |
|---|---|---|---|---|
| H-3 | 3.48 t (9.5) | 2.48 dd (11.0, 9.5) | 2.45 dd (11.6, 5.4) | 2.41 dd (11.3, 5.8) |
| H-7 | 2.69 dt, (9.5, 8.9) | 2.38 dt (11.0, 8.0) | 2.97 dt (5.4, 11.3) | 2.50 dt (5.8, 11.7) |
NMR data were recorded in CDCl3.
Figure 4Experimental electronic circular dichroism (ECD) spectra of 8 and 9 (black), the calculated ECD spectra of 8 and 9 (red), and their enantiomers (blue), respectively.
Scheme 1Proposed biosynthetic pathway of 8 and 9 from their parent precursors.