| Literature DB >> 32605149 |
Yi Ding1, Xiaojing Zhu1, Liling Hao1, Mengyao Zhao1, Qiang Hua1, Faliang An1.
Abstract
Four new indolyl diketopiperazines, aspamides A-E (1-4) and two new diketopiperazines, aspamides F-G (5-6), along with 11 known diketopiperazines and intermediates were isolated from the solid culture of Aspergillus versicolor, which is an endophyte with the sea crab (Chiromantes haematocheir). Further chiral high-performance liquid chromatography resolution gave enantiomers (+)- and (-)-4, respectively. The structures and absolute configurations of compounds 1-6 were determined by the comprehensive analyses of nuclear magnetic resonance (NMR), high-resolution mass spectrometry (HR-MS), and electronic circular dichroism (ECD) calculation. All isolated compounds were selected for the virtual screening on the coronavirus 3-chymoretpsin-like protease (Mpro) of Severe Acute Respiratory Syndrome Coronavirus 2 (SARS-CoV-2), and the docking scores of compounds 1-2, 5, 6, 8 and 17 were top among all screened molecules, may be helpful in fighting with Corona Virus Disease-19 (COVID-19) after further studies.Entities:
Keywords: Aspergillus versicolor; ECD calculation; diketopiperazines; enantiomers; endophyte fungus
Mesh:
Substances:
Year: 2020 PMID: 32605149 PMCID: PMC7401283 DOI: 10.3390/md18070338
Source DB: PubMed Journal: Mar Drugs ISSN: 1660-3397 Impact factor: 5.118
Figure 1Structures of compounds 1–17.
1H (600 MHz) and 13C (150 MHz) NMR data of 1–3 in DMSO-d6.
| No. | 1 | 2 | 3 | |||
|---|---|---|---|---|---|---|
|
|
|
| ||||
| 1 | 165.9 | - | 166.8 | - | 166.2 | - |
| 2 | - | 9.01, s | - | 9.43, s | - | 8.93, s |
| 3 | 125.3 | - | 125.9 | - | 126.2 | - |
| 4 | 158.9 | - | 161.1 | - | 158.4 | - |
| 6a | 86.7 | 5.59, dd (5.7, 1.7) | 85.4 | 5.35, dd (2.8, 1.7) | 54.4 | 3.32, m |
| 6b | - | - | - | - | - | 3.75, dd (12.7, 4.5) |
| 7a | 29.6 | 1.75, dddd (13.4, 8.4, 5.0, 1.7) | 30.7 | 1.92, m | 66.6 | 4.35, t (4.5) |
| 7b | 1.97, m | - | ||||
| 8a | 25.9 | 2.13, dddd (12.2, 9.7, 6.7, 5.0) | 24.5 | 1.92, m | 37.6 | 1.98, ddd (12.7, 11.5, 4.5) |
| 8b | 2.27, m | 2.10, m | 2.12, dd (12.7, 6.0) | |||
| 9 | 56.5 | 4.57, dd (8.9, 6.7) | 58.7 | 4.44, m | 57.0 | 4.65, dd (11.5, 6.0) |
| 10 | 111.9 | 6.98, s | 113.2 | 7.05, s | 110.7 | 6.92, s |
| 11 | 103.9 | - | 104.3 | - | 103.8 | - |
| 12 | 125.9 | - | 125.8 | - | 126.0 | - |
| 13 | 119.6 | 7.29, d (8.0) | 119.7 | 7.23, d (8.0) | 119.4 | 7.29, d (8.0) |
| 14 | 119.4 | 6.99, m | 119.3 | 6.99, ddd (8.0, 7.0, 1.2) | 119.3 | 7.00, m |
| 15 | 120.7 | 7.08, ddd (8.0, 7.0, 1.2) | 120.7 | 7.07, ddd (8.0, 7.0, 1.2) | 120.7 | 7.08, ddd (8.0, 7.0, 1.2) |
| 16 | 111.5 | 7.41, d (8.0) | 111.6 | 7.41, m | 111.4 | 7.41, d (8.0) |
| 17 | 135.1 | - | 135.1 | - | 135.1 | - |
| 18 | 11.06, s | - | 11.06, s | - | 11.03, s | |
| 19 | 144.3 | - | 144.7 | - | 144.0 | - |
| 20 | 39.0 | - | 39.1 | - | 39.0 | - |
| 21 | 145.1 | 6.07, dd (17.4, 10.5) | 145.1 | 6.09, dd (17.1, 10.8) | 145.2 | 6.08, dd (17.3, 10.5) |
| 22 | 111.7 | 5.05, m | 111.7 | 5.06, m | 111.6 | 5.04, m |
| 23 | 27.4 | 1.45, s | 27.5 | 1.47, s | 27.4 | 1.46, s |
| 24 | 27.8 | 1.49, s | 27.9 | 1.51, s | 27.7 | 1.50, s |
| 6-OEt | 63.6 | 3.65, m | 64.3 | 3.60, m | - | - |
| 15.2 | 1.13, t (7.1) | 15.4 | 1.09, t (7.1) | - | - |
Figure 2The key heteronuclear multiple bond correlation (HMBC) (A) and rotating frame Overhauser effect spectroscopy (ROESY) (B) correlations, and experimental and calculated electronic circular dichroism (ECD) spectra (C) of compound 1.
Figure 3The key HMBC correlations (A) and partial enlarged view of ROESY spectra (B) of 3, and experimental ECD spectra (C) of compounds 1–3.
Figure 4The key HMBC correlations of compounds 4–6.
Figure 5Experimental and calculated ECD spectra of 4.
1H (600 MHz) and 13C (150 MHz) NMR data of 4–6 (4 in DMSO-d, 5–6 in CDCl3).
| No. | 4 | 5 | 6 | |||
|---|---|---|---|---|---|---|
|
|
|
| ||||
| 1 | 163.1 | - | - | - | - | - |
| 2 | - | 9.43, s | 83.9 | 5.27, d (4.7) | 78.3 | 6.40, d (4.3) |
| 3 | 125.5 | - | 146.9 | - | 151.1 | - |
| 4 | 159.4 | - | - | - | - | |
| 5 | - | - | 146.7 | - | 139.0 | - |
| 6 | 45.1 | 3.62, dd (8.6, 5.8) | 127.8 | 7.74, d (8.0) | 122.9 | 8.23, d, (8.0) |
| 7a | 19.5 | 1.92, m | 134.9 | 7.79, t (8.0) | 136.7 | 7.91, t (8.0) |
| 7b | 1.96, m | |||||
| 8a | 32.4 | 2.02, m | 128.0 | 7.53, t (8.0) | 129.7 | 7.66, t (8.0) |
| 8b | 2.33, m | |||||
| 9 | 91.0 | - | 127.0 | 8.24, d (8.0) | 127.9 | 8.23, d, (8.0) |
| 10 | 112.7 | 7.02, s | 120.8 | - | 119.1 | - |
| 11 | 103.9 | - | 160.3 | - | 157.4 | - |
| 12 | 126.3 | - | - | - | - | - |
| 13 | 119.1 | 7.21, d (8.0) | 57.4 | 5.53, dd (8.8, 6.5) | 58.1 | 5.54, t (7.8) |
| 14 | 119.0 | 7.00, m | 170.0 | - | 167.6 | - |
| 15 | 120.7 | 7.09, m | 40.0 | 3.43, m | 39.9 | 3.48, m |
| 16 | 111.6 | 7.43, d (8.0) | 135.9 | - | 134.9 | - |
| 17 | 135.1 | - | 129.8 | 7.29, m | 129.7 | 7.24, m |
| 18 | 11.10, s | 128.6 | 7.28, m | 128.8 | 7.24, m | |
| 19 | 144.4 | - | 127.0 | 7.24, m | 127.7 | 7.20, m |
| 20 | 39.0 | - | 128.6 | 7.28, m | 128.8 | 7.24, m |
| 21 | 145.2 | 6.09, ddd (17.1, 10.8, 1.6) | 129.8 | 7.29, m | 129.7 | 7.24, m |
| 22 | 111.7 | 5.06, m | - | - | - | - |
| 23 | 27.4 | 1.47, s | - | - | - | - |
| 24 | 27.8 | 1.50, s | - | - | - | - |
| 9-OEt | 59.2 | 3.53, qd (7.0, 3.9) | - | - | - | - |
| - | 15.2 | 1.22, td (7.0, 1.5) | - | - | - | - |
| 2-OMe/ 2-OEt | - | - | 56.0 | 3.53, s | 66.2 | 4.04, dt (9.0, 7.0) |
| 4.11, dt (9.0, 7.0) | ||||||
| - | - | - | - | 15.4 | 1.35, t (7.0) |
Figure 6Experimental ECD spectra of 5, 6, and 17.