| Literature DB >> 29882867 |
Huaqiang Li1, Weiguang Sun2, Mengyi Deng3, Changxing Qi4, Chunmei Chen5, Hucheng Zhu6, Zengwei Luo7, Jianping Wang8, Yongbo Xue9, Yonghui Zhang10.
Abstract
Asperversins A (1) and B (2), two novel meroterpenoids featuring an uncommon 5/6/6/6 ring system, along with five new analogues (3⁻7) and a known compound asperdemin (8), were obtained from the marine-derived fungus Aspergillus versicolor. Their structures and absolute configurations were confirmed by extensive spectroscopic analyses, single-crystal X-ray diffraction studies, and electronic circular dichroism (ECD) calculation. All new compounds were tested for their acetylcholinesterase enzyme (AChE) inhibitory activities and cytotoxic activities, of which compound 7 displayed moderate inhibitory activity against the AChE with an IC50 value of 13.6 μM.Entities:
Keywords: Aspergillus versicolor; acetylcholinesterase enzyme; asperversins; meroterpenoids
Mesh:
Substances:
Year: 2018 PMID: 29882867 PMCID: PMC6025407 DOI: 10.3390/md16060177
Source DB: PubMed Journal: Mar Drugs ISSN: 1660-3397 Impact factor: 5.118
1H NMR Data for Compounds 1–7 (δ in ppm, J in Hz).
|
| 1 | 2 | 3 | 4 | 5 | 6 | 7 |
|---|---|---|---|---|---|---|---|
| 1 | 3.98, dd (9.6, 2.3) | 3.98, dd (9.7, 2.0) | 5.42, dd (11.0, 1.8) | 3.87, t (7.0) | 3.79, dd (7.0, 5.2) | 4.96, d (7.3) | 7.08, d (10.2) |
| 2 | 2.46, dd (15.7, 9.6) | 2.39, m | 2.43, dd (14.8, 3.9) | 2.84, m | 2.79, dd (16.0, 7.0) | 3.10, dd (16.2, 7.3) | 5.87, d (10.2) |
| 5 | 2.13, d (2.3) | 2.12, d (2.5) | 2.49, d (3.0) | 2.21, dd (12.1, 2.4) | 2.38, d (2.3) | 2.49, d (2.6) | 1.98, d (1.8) |
| 6 | 5.48, dd (4.5, 2.3) | 5.48, m | 5.27, m | 1.67, m | 5.52, dd (6.3, 3.0) | 5.64, m | 5.60, m |
| 7 | 2.11, m | 2.11, m | 2.04, m | 1.72, m | 1.92, dd, (14.6, 6.3) | 2.05, m | 1.91, dd (14.7, 3.0) |
| 9 | 1.97, dd (12.6, 5.2) | 1.98, dd (11.3, 6.4) | 1.90, dd (12.7, 4.6) | 2.32, dd (12.5, 4.6) | 2.34, m | 2.15, m | 1.81, dd (12.9, 4.3) |
| 11 | 2.33, m | 2.40, m | 2.40, m | 2.08, m | 2.09, m | 2.29, m | 2.42, dd (16.5, 12.9) |
| 15 | 5.91, d (1.0) | 5.92, d (1.1) | 5.91, d (1.1) | 5.81, d (1.1) | 5.72, d (0.6) | 5.91, d (1.1) | 5.70, d (1.1) |
| 17 | 2.20, d (1.0) | 2.21, d (1.1) | 2.21, d (1.1) | 2.15, d (1.1) | 2.05, d (0.6) | 2.20, d (1.1) | 2.18, d (1.1) |
| 18 | 1.43, s | 1.43, s | 1.42, s | 1.30, s | 1.32, s | 1.41, s | 1.40, s |
| 19 | 1.31, s | 1.32, s | 1.33, s | 1.14, s | 1.35, s | 1.53, s | 1.46, s |
| 20 | 1.26, s | 1.26, s | 5.05, m | 1.41, s | 1.31, s | 1.49, s | 1.23, s |
| 21 | 1.18, s | 1.18, s | 1.94, s | 1.50, s | 1.57, s | 1.73, s | 1.19, s |
| 23 | 2.07, s | 2.07, s | 2.07, s | 2.06, s | 2.14, s | 2.09, s | |
| 24 | 3.70, s | 2.08, s | |||||
| 25 | 1.99, s |
Recorded at 400 MHz in methanol-d4; recorded at 600 MHz in acetone-d6.
13C and DEPT NMR Data of Compounds 1–7 (δ in ppm, J in Hz).
|
| 1 | 2 | 3 | 4 | 5 | 6 | 7 |
|---|---|---|---|---|---|---|---|
| 1 | 84.0, CH | 84.5, CH | 77.2, CH | 68.8, CH | 69.3, CH | 72.6, CH | 155.1, CH |
| 2 | 37.3, CH2 | 37.9, CH2 | 36.2, CH2 | 39.8, CH2 | 39.9, CH2 | 36.3, CH2 | 125.1, CH |
| 3 | 173.6, C | 176.7, C | 173.2, C | 171.2, C | 171.0, C | 172.9, C | 203.2, C |
| 4 | 79.7, C | 79.6, C | 144.4, C | 84.8, C | 84.1, C | 86.7, C | 45.1, C |
| 5 | 61.4, CH | 61.5, CH | 51.3, CH | 50.2, CH | 49.5, CH | 51.3, CH | 53.0, CH |
| 6 | 68.3, CH | 68.3, CH | 73.4, CH | 23.3, CH2 | 72.6, CH | 72.7, CH | 68.8, CH |
| 7 | 45.3, CH2 | 45.3, CH2 | 43.3, CH2 | 40.6, CH2 | 43.3, CH2 | 43.3, CH2 | 43.4, CH2 |
| 8 | 81.5, C | 81.6, C | 81.2, C | 80.9, C | 79.9, C | 80.4, C | 79.3, C |
| 9 | 48.1, CH | 48.1, CH | 44.2, CH | 44.8, CH | 44.4, CH | 45.1, CH | 46.9, CH |
| 10 | 46.5, C | 46.4, C | 45.6, C | 45.3, C | 45.4, C | 45.1, C | 39.4, C |
| 11 | 19.4, CH2 | 19.4, CH2 | 19.7, CH2 | 17.5, CH2 | 17.2, CH2 | 17.6, CH2 | 16.9, CH2 |
| 12 | 98.5, C | 98.6, C | 99.0, C | 98.2, C | 98.3, C | 98.3, C | 97.3, C |
| 13 | 167.1, C | 167.2, C | 167.1, C | 164.5, C | 164.5, C | 164.6, C | 164.8, C |
| 14 | 162.2, C | 162.2, C | 162.2, C | 160.8, C | 161.0, C | 162.3, C | 160.5, C |
| 15 | 102.2, CH | 102.0, CH | 101.8, CH | 100.6, CH | 100.6, CH | 101.7, CH | 100.3, CH |
| 16 | 165.1, C | 165.2, C | 164.8, C | 163.3, C | 162.8, C | 166.8, C | 162.7, C |
| 17 | 19.5, CH3 | 19.5, CH3 | 19.5, CH3 | 19.5, CH3 | 19.5, CH3 | 19.5, CH3 | 19.7, CH3 |
| 18 | 23.0, CH3 | 23.0, CH3 | 22.1, CH3 | 20.9, CH3 | 21.9, CH3 | 22.0, CH3 | 22.0, CH3 |
| 19 | 12.4, CH3 | 12.5, CH3 | 15.3, CH3 | 15.2, CH3 | 16.2, CH3 | 16.0, CH3 | 18.1, CH3 |
| 20 | 30.5, CH3 | 30.6, CH3 | 117.7, CH2 | 34.9, CH3 | 33.9, CH3 | 33.9, CH3 | 26.6, CH3 |
| 21 | 25.5, CH3 | 25.6, CH3 | 26.5, CH3 | 24.0, CH3 | 26.4, CH3 | 26.2, CH3 | 22.8, CH3 |
| 22 | 171.6, C | 171.7, C | 171.5, C | 170.2, C | 171.2, C | 169.7, C | |
| 23 | 21.3, CH3 | 21.3, CH3 | 20.9, CH3 | 21.4, CH3 | 21.3, CH3 | 21.5, CH3 | |
| 24 | 52.3, OCH3 | 172.2, C | 171.1, C | ||||
| 25 | 21.4, CH3 | 20.6, CH3 |
Recorded at 100 MHz in methanol-d4; recorded at 150 MHz in acetone-d6.
Figure 1The structures of compounds 1–8.
Figure 2Key 2D correlations of compounds 1, 3, 4 and 7.
Figure 3The experimental and calculated ECD of 1.
Figure 4The experimental ECD of 2–8.
Figure 5ORTEP drawings of compounds 5 and 7.
Scheme 1Postulated biosynthetic pathway of compounds 1 and 2.
The inhibitory value and docking score of compounds 1–8 with AChE.
| Compounds | Inhibitory Ratio at 100 μM | IC50 Value (μM) | Docking Score |
|---|---|---|---|
|
| 35.7% | >40 | 3.25 |
|
| 36.2% | >40 | 3.89 |
|
| 27.6% | >40 | 2.76 |
|
| 50.2% | >40 | 5.32 |
|
| 48.7% | >40 | 4.98 |
|
| 62.9% | >40 | 5.87 |
|
| 92.4% | 13.6 | 7.85 |
|
| 25.3% | >40 | 2.58 |
| Galanthamine | 3.57 |
IC50 value of compounds against AChE (μM); Docking score/interaction potential of compounds with target protein.
Figure 6Low-energy binding conformations of compounds bound to AChE generated by virtual ligand docking. (A) Compound 7 was observed to occupy the active site with significant scores and adopted a conformation similar to that of galanthamine. (B) Compound 7 had the ability to form key hydrogen bonding interaction with residues Ser125, Tyr133, Glu202, and His447. (C,D) Compounds 2 (C) and 5 (D) were observed to occupy the active site with pretty low scores comparing with that of galanthamine.