Structurally Diverse Polycyclic Salicylaldehyde Derivative Enantiomers from a Marine-Derived Fungus Eurotium sp. SCSIO F452
Abstract
1. Introduction
2. Results
2.1. Structure Identification
2.2. Proposed Biosynthesis Pathway
2.3. Bioactivity Evaluation
3. Materials and Methods
3.1. General Experimental Procedures
3.2. Fungal Material, Fermentation, and Extraction
3.3. Purification
3.4. X-ray Crystallographic Analysis
3.5. ECD and 13C NMR Calculation Methods
3.6. Cytotoxicity, Antioxidative, and α-Glucosidase Inhibitory Activity, and Antimicrobial Activity Assays
3.6.1. Cytotoxicity Assay
3.6.2. Antioxidative Assay
3.6.3. α-Glucosidase Inhibitory Activity Assay
3.6.4. Antimicrobial Activity Assay
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Carroll, A.R.A.; Copp, B.R.; Davis, R.A.; Keyzers, R.A.; Prinsep, M.R. Marine natural products. Nat. Prod. Rep. 2021, 38, 362–413. [Google Scholar] [CrossRef] [Scilit]
- Rateb, M.E.; Ebel, R. Secondary metabolites of fungi from marine habitats. Nat. Prod. Rep. 2011, 28, 290–344. [Google Scholar] [CrossRef] [Scilit]
- Aly, A.H.; Debbab, A.; Proksch, P. Fifty years of drug discovery from fungi. Fungal Divers. 2011, 50, 3–19. [Google Scholar] [CrossRef] [Scilit]
- Zhang, J.J.; Tang, X.; Moore, B.S. Genetic platforms for heterologous expression of microbial natural products. Nat. Prod. Rep. 2019, 36, 1313–1332. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Hu, Z.; Ye, Y.; Zhang, Y. Large-scale culture as a complementary and practical method for discovering natural products with novel skeletons. Nat. Prod. Rep. 2021. [Google Scholar] [CrossRef] [Scilit]
- Zang, Y.; Gong, Y.; Gong, J.; Liu, J.; Chen, C.; Gu, L.; Zhou, Y.; Wang, J.; Zhu, H.; Zhang, Y. Fungal polyketides with three distinctive ring skeletons from the fungus Penicillium canescens uncovered by OSMAC and molecular networking strategies. J. Org. Chem. 2020, 85, 4973–4980. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhu, H.; Chen, C.; Xue, Y.; Tong, Q.; Li, X.N.; Chen, X.; Wang, J.; Yao, G.; Luo, Z.; Zhang, Y. Asperchalasine A, a cytochalasan dimer with an unprecedented decacyclic ring system, from Aspergillus flavipes. Angew. Chem. Int. Ed. 2015, 54, 13374–13378. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Huang, H.; Wang, F.; Luo, M.; Chen, Y.; Song, Y.; Zhang, W.; Zhang, S.; Ju, J. Halogenated anthraquinones from the marine-derived fungus Aspergillus sp. SCSIO F063. J. Nat. Prod. 2012, 75, 1346–1352. [Google Scholar] [CrossRef] [Scilit]
- Wang, F.Z.; Huang, Z.; Shi, X.F.; Chen, Y.C.; Zhang, W.M.; Tian, X.P.; Li, J.; Zhang, S. Cytotoxic indole diketopiperazines from the deep sea-derived fungus Acrostalagmus luteoalbus SCSIO F457. Bioorg. Med. Chem. Lett. 2012, 22, 7265–7267. [Google Scholar] [CrossRef] [Scilit]
- Zeng, Q.; Zhong, W.M.; Chen, Y.C.; Xiang, Y.; Chen, X.Y.; Tian, X.P.; Zhang, W.M.; Zhang, S.; Wang, F.Z. A new butenolide derivative from the deep-sea fungus Aspergillus terreus SCSIO FZQ028. Nat. Prod. Res. 2020, 34, 1984–1991. [Google Scholar] [CrossRef] [Scilit]
- Xiang, Y.; Zeng, Q.; Mai, Z.M.; Chen, Y.C.; Shi, X.F.; Chen, X.Y.; Zhong, W.M.; Wei, X.Y.; Zhang, W.M.; Zhang, S.; et al. Asperorydines N-P, three new cyclopiazonic acid alkaloids from the marine-derived fungus Aspergillus flavus SCSIO F025. Fitoterapia 2021, 150, 104839. [Google Scholar] [CrossRef] [Scilit]
- Wang, F.Z.; Huang, Z.; Shi, X.F.; Chen, Y.C.; Zhang, W.M.; Tian, X.P.; Li, J.; Zhang, S. Analysis of secondary metabolites produced by Eurotium sp. SCSIO F452 isolated from the South China Sea sediment. Zhongguo Haiyang Yaowu 2013, 32, 7–12. [Google Scholar]
- Zhong, W.; Wang, J.; Wei, X.; Chen, Y.; Fu, T.; Xiang, Y.; Huang, X.; Tian, X.; Xiao, Z.; Zhang, W.; et al. Variecolortins A-C, three pairs of spirocyclic diketopiperazine enantiomers from the marine-derived fungus Eurotium sp. SCSIO F452. Org. Lett. 2018, 20, 4593–4596. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhong, W.; Wang, J.; Wei, X.; Fu, T.; Chen, Y.; Zeng, Q.; Huang, Z.; Huang, X.; Zhang, W.; Zhang, S.; et al. Three pairs of new spirocyclic alkaloid enantiomers from the marine-derived fungus Eurotium sp. SCSIO F452. Front. Chem. 2019, 7, 350. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhong, W.-M.; Wang, J.-F.; Wei, X.-Y.; Zeng, Q.; Chen, X.-Y.; Xiang, Y.; Tian, X.-P.; Zhang, S.; Long, L.-J.; Wang, F.-Z. (+)- and (−)-Eurotone A: A pair of enantiomeric polyketide dimers from a marine-derived fungus Eurotium sp. SCSIO F452. Tetrahedron Lett. 2019, 60, 1600–1603. [Google Scholar] [CrossRef] [Scilit]
- Zhong, W.; Chen, Y.; Wei, X.; Wang, J.; Zhang, W.; Wang, F.; Zhang, S. Salicylaldehyde derivatives from a marine-derived fungus Eurotium sp. SCSIO F452. J. Antibiot. 2020, 74, 273–279. [Google Scholar] [CrossRef] [Scilit]
- Zhong, W.; Chen, Y.; Mai, Z.; Wei, X.; Wang, J.; Zeng, Q.; Chen, X.; Tian, X.; Zhang, W.; Wang, F.; et al. Euroticins A and B, two pairs of highly constructed salicylaldehyde derivative enantiomers from a marine-derived fungus Eurotium sp. SCSIO F452. J. Org. Chem. 2020, 85, 12754–12759. [Google Scholar] [CrossRef] [Scilit]
- Zhong, W.; Chen, Y.; Wei, X.; Wang, J.; Zeng, Q.; Tian, X.; Zhang, W.; Wang, F.; Zhang, S. Euroticins C–E, three pairs of polycyclic salicylaldehyde derivative enantiomers from a marine-derived fungus Eurotium sp. SCSIO F452. Org. Chem. Front. 2021, 8, 1466–1473. [Google Scholar] [CrossRef] [Scilit]
- Li, D.L.; Li, X.M.; Li, T.G.; Dang, H.Y.; Proksch, P.; Wang, B.G. Benzaldehyde derivatives from Eurotium rubrum, an endophytic fungus derived from the mangrove plant Hibiscus tiliaceus. Chem. Pharm. Bull. 2008, 56, 1282–1285. [Google Scholar] [CrossRef] [Scilit]
- Chen, M.; Shao, C.-L.; Wang, K.-L.; Xu, Y.; She, Z.-G.; Wang, C.-Y. Dihydroisocoumarin derivatives with antifouling activities from a gorgonian-derived Eurotium sp. fungus. Tetrahedron 2014, 70, 9132–9138. [Google Scholar] [CrossRef] [Scilit]
- Karplus, M. Contact electron-spin coupling of nuclear magnetic moments. J. Chem. Phys. 1959, 30, 11–15. [Google Scholar] [CrossRef] [Scilit]
- Karplus, M. Vicinal proton coupling in nuclear magnetic resonance. J. Am. Chem. Soc. 1963, 85, 2870–2871. [Google Scholar] [CrossRef] [Scilit]
- Liang, X.; Huang, Z.H.; Ma, X.; Zheng, Z.H.; Zhang, X.X.; Lu, X.H.; Qi, S.H. Mycotoxins as inhibitors of protein tyrosine phosphatases from the deep-sea-derived fungus Aspergillus puniceus SCSIO z021. Bioorg. Chem. 2021, 107, 104571. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kamada, T.; Kang, M.C.; Phan, C.S.; Zanil, I.I.; Jeon, Y.J.; Vairappan, C.S. Bioactive cembranoids from the soft foral genus Sinularia sp. in Borneo. Mar. Drugs 2018, 16, 99. [Google Scholar] [CrossRef] [Scilit]
- Zhao, H.; Yang, A.; Liu, J.; Bao, S.; Peng, R.; Hu, Y.; Yuan, T.; Hou, S.; Xie, T.; Zhang, Q.; et al. Chartspiroton, a tetracyclic spiro-naphthoquinone derivative from a medicinal plant endophytic Streptomyces. Org. Lett. 2020, 22, 3739–3743. [Google Scholar] [CrossRef] [Scilit]
- Zhang, X.; Chen, S.; Zhang, L.; Zhang, Q.; Zhang, W.; Chen, Y.; Zhang, W.; Zhang, H.; Zhang, C. Dassonmycins A and B, polycyclic thioalkaloids from a marine sponge-derived Nocardiopsis dassonvillei SCSIO 40065. Org. Lett. 2021, 23, 2858–2862. [Google Scholar] [CrossRef] [Scilit]
- Frisch, M.J.; Trucks, G.W.; Schlegel, H.B.; Scuseria, G.E.; Robb, M.A.; Cheeseman, J.R.; Scalmani, G.; Barone, V.; Mennucci, B.; Petersson, G.A.; et al. Gaussian 09, Revision D.01; Gaussian, Inc.: Wallingford, CT, USA, 2010. [Google Scholar]
- Neese, F. The ORCA program system. WIREs Comput. Molecul. Sci. 2012, 2, 73–78. [Google Scholar] [CrossRef] [Scilit]
- Neese, F. Software update: The ORCA program system, version 4.0. WIREs Comput. Molecul. Sci. 2018, 8, e1327. [Google Scholar] [CrossRef] [Scilit]
- Sun, Z.H.; Gu, J.; Ye, W.; Wen, L.X.; Lin, Q.B.; Li, S.N.; Chen, Y.C.; Li, H.H.; Zhang, W.M. Geospallins A-C: New thiodiketopiperazines with inhibitory activity against angiotensin-converting enzyme from a deep-sea-derived fungus Geosmithia pallida FS140. Mar. Drugs 2018, 16, 464. [Google Scholar] [CrossRef] [Scilit] [PubMed]








| 1 | 2 | |||
|---|---|---|---|---|
| No. | δCa | δH (J, Hz) b | δCa | δH (J, Hz) b |
| 1 | 120.6 | 121.1 | ||
| 2 | 143.0 | 144.6 | ||
| 3 | 120.1 | 127.7 | ||
| 4 | 110.3 | 6.36, s | 117.0 | 6.51, s |
| 5 | 145.7 | 148.2 | ||
| 6 | 125.6 | 122.4 | ||
| 7 | 35.8 | 2.66, d (17.3) | 95.9 | 5.58, s |
| 2.49, overlap | ||||
| 8 | 106.2 | |||
| 9 | 25.8 | 1.53, s | ||
| 1′ | 122.6 | 6.27, d (9.7) | 29.2 | 3.27, m |
| 2′ | 131.6 | 5.67, d (9.7) | 123.8 | 5.28, br t (7.4) |
| 3′ | 75.7 | 132.6 | ||
| 4′ | 28.0 | 1.31, s | 25.9 | 1.72, s |
| 5′ | 27.8 | 1.29, s | 17.8 | 1.69, s |
| 1″ | 74.1 | 5.09, s | 41.3 | 2.30, dd (12.0, 8.1) |
| 2″ | 84.8 | 3.75, t (6.7) | 67.9 | 4.61, ddd (8.1, 7.7, 5.0) |
| 3″ | 35.1 | 1.45, m | 35.0 | 2.49, m |
| 1.71, overlap | ||||
| 4″ | 25.2 | 1.32, overlap | 29.5 | 1.92 m |
| 1.39, m | ||||
| 5″ | 31.5 | 1.27, overlap | 49.8 | 1.33, m |
| 6″ | 22.5 | 1.28, overlap | 80.8 | 4.31, dq (10.4, 6.2) |
| 7″ | 14.4 | 0.86, t (6.7) | 21.8 | 1.30, d (6.2) |
| 5-OH | 8.99, s | |||
| 7-OMe | 55.4 | 3.45, s | ||
| 3 | 4 | |||
|---|---|---|---|---|
| No. | δCa | δH (J, Hz) b | δCc | δH (J, Hz) d |
| 1 | 128.3 | 41.1 | 2.80, d (17.8) | |
| 2.51, overlap | ||||
| 2 | 140.1 | 169.4 | ||
| 3 | 130.8 | 126.7 | 6.01, s | |
| 4 | 112.9 | 6.60, s | 209.5 | |
| 5 | 158.1 | 76.4 | ||
| 6 | 112.9 | |||
| 7 | 57.3 | 4.99, d (16.3) | ||
| 4.81, d (16.3) | ||||
| 1′ | 122.4 | 6.46, d (9.9) | 121.7 | 6.68, d (15.8) |
| 2′ | 138.0 | 6.07, d (9.9) | 149.5 | 6.49, d (15.8) |
| 3′ | 77.1 | 69.5 | ||
| 4′ | 28.0 | 1.43, s | 29.5 | 1.24, s |
| 5′ | 27.7 | 1.42, s | 29.5 | 1.24, s |
| 1″ | 197.5 | 37.4 | 1.50, dt (12.6, 3.9) | |
| 1.39, dt (12.6, 4.8) | ||||
| 2″ | 92.3 | 23.2 | 1.25 overlap | |
| 1.10 m | ||||
| 3″ | 37.0 | 2.11, m | 29.5 | 1.21, overlap |
| 1.83, m | ||||
| 4″ | 23.6 | 1.53, m | 28.7 | 1.22, overlap |
| 1.35, overlap | ||||
| 5″ | 32.8 | 1.30, overlap | 31.2 | 1.20, overlap |
| 6″ | 23.2 | 1.29, overlap | 22.1 | 1.24, overlap |
| 7″ | 14.3 | 0.88, t (7.0) | 14.0 | 0.84, t (7.2) |
| 5-OH | 11.2, s | |||
| 2″-OH | 5.90, br s | |||
| Compounds | IC50 (μM) | |||
|---|---|---|---|---|
| SF-268 | MCF-7 | HepG2 | A549 | |
| (+)-1 | 21.88 ± 0.96 | 27.17 ± 2.03 | 28.00 ± 1.68 | 33.78 ± 0.34 |
| (−)-1 | 37.31 ± 2.46 | 28.00 ± 1.57 | 30.72 ± 3.55 | 33.43 ± 1.50 |
| (+)-2 | >100 | >100 | >100 | >100 |
| (−)-2 | >100 | >100 | >100 | >100 |
| (±)-3 | >100 | >100 | >100 | >100 |
| (+)-4 | 12.74 ± 0.46 | 20.51 ± 1.54 | 19.88 ± 5.09 | 16.90 ± 0.92 |
| (−)-4 | 23.73 ± 3.88 | 23.56 ± 2.99 | 19.53 ± 2.70 | 22.15 ± 1.54 |
| (+)-5 | 21.98 ± 0.88 | 55.59 ± 4.85 | 41.18 ± 2.63 | 47.34 ± 0.71 |
| (−)-5 | 35.65 ± 1.79 | 50.67 ± 2.48 | 40.69 ± 2.76 | 42.61 ± 1.43 |
| Adriamycin | 1.19 ± 0.03 | 2.02 ± 0.04 | 1.99 ± 0.07 | 1.73 ± 0.04 |
| Compounds | Antioxidative Activity EC50 (μM) | α-Glucosidase Inhibitory IC50 (μM) |
|---|---|---|
| (+)-1 | 42.34 ± 3.85 | >100 |
| (−)-1 | 41.40 ± 2.68 | >100 |
| (+)-2 | 76.90 ± 0.99 | 38.04 ± 2.73 |
| (−)-2 | 77.07 ± 1.88 | 79.71 ± 1.74 |
| (±)-3 | >100 | 16.31 ± 1.68 |
| (+)-4 | >100 | >100 |
| (−)-4 | >100 | >100 |
| (+)-5 | >100 | 89.41 ± 7.86 |
| (−)-5 | >100 | >100 |
| Ascorbic acid a | 11.35 ± 0.56 | |
| Acarbose b | 32.92 ± 1.03 |
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Zhong, W.-M.; Wei, X.-Y.; Chen, Y.-C.; Zeng, Q.; Wang, J.-F.; Shi, X.-F.; Tian, X.-P.; Zhang, W.-M.; Wang, F.-Z.; Zhang, S. Structurally Diverse Polycyclic Salicylaldehyde Derivative Enantiomers from a Marine-Derived Fungus Eurotium sp. SCSIO F452. Mar. Drugs 2021, 19, 543. https://doi.org/10.3390/md19100543
Zhong W-M, Wei X-Y, Chen Y-C, Zeng Q, Wang J-F, Shi X-F, Tian X-P, Zhang W-M, Wang F-Z, Zhang S. Structurally Diverse Polycyclic Salicylaldehyde Derivative Enantiomers from a Marine-Derived Fungus Eurotium sp. SCSIO F452. Marine Drugs. 2021; 19(10):543. https://doi.org/10.3390/md19100543
Chicago/Turabian StyleZhong, Wei-Mao, Xiao-Yi Wei, Yu-Chan Chen, Qi Zeng, Jun-Feng Wang, Xue-Feng Shi, Xin-Peng Tian, Wei-Min Zhang, Fa-Zuo Wang, and Si Zhang. 2021. "Structurally Diverse Polycyclic Salicylaldehyde Derivative Enantiomers from a Marine-Derived Fungus Eurotium sp. SCSIO F452" Marine Drugs 19, no. 10: 543. https://doi.org/10.3390/md19100543
APA StyleZhong, W.-M., Wei, X.-Y., Chen, Y.-C., Zeng, Q., Wang, J.-F., Shi, X.-F., Tian, X.-P., Zhang, W.-M., Wang, F.-Z., & Zhang, S. (2021). Structurally Diverse Polycyclic Salicylaldehyde Derivative Enantiomers from a Marine-Derived Fungus Eurotium sp. SCSIO F452. Marine Drugs, 19(10), 543. https://doi.org/10.3390/md19100543

