Novel Sesquiterpene and Diterpene Aminoglycosides from the Deep-Sea-Sediment Fungus Trichoderma sp. SCSIOW21
Abstract
:1. Introduction
2. Results and Discussion
3. Materials and Methods
3.1. General Experimental Procedures
3.2. Fungal Strain and Fermentation
3.3. Isolation Procedure
3.4. Spectral Data
3.5. NO-Production-Inhibitory Activity
3.6. Anti-fungal Activity
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Giddings, L.A.; Newman, D.J. Extremophilic Fungi from Marine Environments: Underexplored Sources of Antitumor, Anti-Infective and Other Biologically Active Agents. Mar. Drugs 2022, 20, 62. [Google Scholar] [CrossRef]
- Blunt, J.W.; Copp, B.R.; Keyzers, R.A.; Munro, M.H.; Prinsep, M.R. Marine natural products. Nat. Prod. Rep. 2016, 33, 382–431. [Google Scholar] [CrossRef] [Green Version]
- Jin, L.; Quan, C.; Hou, X.; Fan, S. Potential Pharmacological Resources: Natural Bioactive Compounds from Marine-Derived Fungi. Mar. Drugs 2016, 14, 76. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Yurchenko, A.N.; Girich, E.V.; Yurchenko, E.A. Metabolites of Marine Sediment-Derived Fungi: Actual Trends of Biological Activity Studies. Mar. Drugs 2021, 19, 88. [Google Scholar] [CrossRef] [PubMed]
- Cai, F.; Druzhinina, I.S. In honor of John Bissett: Authoritative guidelines on molecular identification of Trichoderma. Fungal. Divers. 2021, 107, 1–69. [Google Scholar] [CrossRef]
- Reino, J.L.; Guerrero, R.F.; Hernández-Galán, R.; Collado, I.G. Secondary metabolites from species of the biocontrol agent Trichoderma. Phytochem. Rev. 2008, 7, 89–123. [Google Scholar] [CrossRef]
- Zhang, J.-L.; Tang, W.-L.; Huang, Q.-R.; Li, Y.-Z.; Wei, M.-L.; Jiang, L.-L.; Liu, C.; Yu, X.; Zhu, H.-W.; Chen, G.-Z.; et al. Trichoderma: A Treasure House of Structurally Diverse Secondary Metabolites with Medicinal Importance. Front. Microbiol. 2021, 12, 723828. [Google Scholar] [CrossRef]
- Jiang, M.; Wu, Z.; Guo, H.; Liu, L.; Chen, S. A Review of Terpenes from Marine-Derived Fungi: 2015–2019. Mar. Drugs 2020, 18, 321. [Google Scholar] [CrossRef]
- Shi, Z.-Z.; Liu, X.-H.; Li, X.-N.; Ji, N.-Y. Antifungal and Antimicroalgal Trichothecene Sesquiterpenes from the Marine Algicolous Fungus Trichoderma brevicompactum A-DL-9-2. J. Agric. Food Chem. 2020, 68, 15440–15448. [Google Scholar] [CrossRef]
- Du, X.; Li, Y.; Lu, C.; Zheng, Z.; Shen, Y. A novel sesquiterpene glucoside from Trichoderma sp. PT2. Nat. Prod. Res. Dev. 2010, 22, 544–547. [Google Scholar]
- Song, Y.-P.; Miao, F.-P.; Liu, X.-H.; Yin, X.-L.; Ji, N.-Y. Seven chromanoid norbisabolane derivatives from the marine-alga-endophytic fungus Trichoderma asperellum A-YMD-9-2. Fitoterapia 2019, 135, 107–113. [Google Scholar] [CrossRef]
- Liang, X.-R.; Ma, X.-Y.; Ji, N.-Y. Trichosordarin A, a norditerpene glycoside from the marine-derived fungus Trichoderma harzianum R5. Nat. Prod. Res. 2020, 34, 2037–2042. [Google Scholar] [CrossRef] [PubMed]
- Du, F.Y.; Ju, G.L.; Xiao, L.; Zhou, Y.M.; Wu, X. Sesquiterpenes and Cyclodepsipeptides from Marine-Derived Fungus Trichoderma longibrachiatum and Their Antagonistic Activities against Soil-borne Pathogens. Mar. Drugs 2020, 18, 165. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Song, Y.P.; Liu, X.H.; Shi, Z.Z.; Miao, F.P.; Fang, S.T.; Ji, N.Y. Bisabolane, cyclonerane, and harziane derivatives from the marine-alga-endophytic fungus Trichoderma asperellum cf44-2. Phytochemistry 2018, 152, 45–52. [Google Scholar] [CrossRef] [PubMed]
- Lu, X.; He, J.; Wu, Y.; Du, N.; Li, X.; Ju, J.; Hu, Z.; Umezawa, K.; Wang, L. Isolation and Characterization of New Anti-Inflammatory and Antioxidant Components from Deep Marine-Derived Fungus Myrothecium SP. Bzo-l062. Mar. Drugs 2020, 18, 597. [Google Scholar] [CrossRef]
- Li, H.; Liu, X.; Li, X.; Hu, Z.; Wang, L. Novel Harziane Diterpenes from Deep-Sea Sediment Fungus Trichoderma sp. SCSIOW21 and Their Potential Anti-Inflammatory Effects. Mar. Drugs 2021, 19, 689. [Google Scholar] [CrossRef]
- Wang, L.; Umezawa, K. Cellular Signal Transductions and Their Inhibitors Derived from Deep-Sea Organisms. Mar. Drugs 2021, 19, 205. [Google Scholar] [CrossRef]
- Wang, L.; Li, M.; Lin, Y.; Du, S.; Liu, Z.; Ju, J.; Suzuki, H.; Sawada, M.; Umezawa, K. Inhibition of cellular inflammatory mediator production and amelioration of learning deficit in flies by deep sea Aspergillus-derived cyclopenin. J. Antibiot. 2020, 73, 622–629. [Google Scholar] [CrossRef]
- Zou, J.-X.; Song, Y.-P.; Liu, X.-H.; Li, X.-N.; Ji, N.-Y. Bisabolane, cadinane, and cyclonerane sesquiterpenes from an algicolous strain of Trichoderma asperelloides. Bioorganic Chem. 2021, 115, 105223. [Google Scholar] [CrossRef] [PubMed]
- Li, X.; Kim, S.-k.; Kang, J.S.; Choi, H.D.; Son, B.W. Polyketide and Sesquiterpenediol Metabolites from a Marine-Derived Fungus. Bull. Korean Chem. Soc. 2004, 25, 607–608. [Google Scholar] [CrossRef]
- Nozoe, S.; Goi, M.; Morisaki, N. Structure of cyclonerodiol. Tetrahedron Lett. 1970, 11, 1293–1296. [Google Scholar] [CrossRef]
- David, E.; Cane, R.I.; Shiao, M.-S. Cyclonerodiol Biosynthesis and the Enzymatic Conversion of Farnesyl to Nerolidyl pyrophosphate. J. Am. Chem. Soc. 1981, 103, 914–931. [Google Scholar]
- Guo, Y.W.; Gong, B.Q.; Yuan, J.; Li, H.J.; Mahmud, T.; Huang, Y.; Li, J.F.; Yang, D.P.; Lan, W.J. l-Phenylalanine Alters the Privileged Secondary Metabolite Production in the Marine-Derived Fungus Trichoderma erinaceum F1-1. J. Nat. Prod. 2020, 83, 79–87. [Google Scholar] [CrossRef] [PubMed]
- Ji, Y.; Yang, X.; Ji, Z.; Zhu, L.; Ma, N.; Chen, D.; Jia, X.; Tang, J.; Cao, Y. DFT-Calculated IR Spectrum Amide I, II, and III Band Contributions of N-Methylacetamide Fine Components. ACS Omega 2020, 5, 8572–8578. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Song, Y.P.; Miao, F.P.; Liu, X.H.; Yin, X.L.; Ji, N.Y. Cyclonerane Derivatives from the Algicolous Endophytic Fungus Trichoderma asperellum A-YMD-9-2. Mar. Drugs 2019, 17, 252. [Google Scholar] [CrossRef] [Green Version]
- Song, Y.-P.; Miao, F.-P.; Liang, X.-R.; Yin, X.-L.; Ji, N.-Y. Harziane and cadinane terpenoids from the alga-endophytic fungus Trichoderma asperellum A-YMD-9-2. Phytochem. Lett. 2019, 32, 38–41. [Google Scholar] [CrossRef]
- Song, Y.-P.; Fang, S.-T.; Miao, F.-P.; Yin, X.-L.; Ji, N.-Y. Diterpenes and Sesquiterpenes from the Marine Algicolous Fungus Trichoderma harzianum X-5. J. Nat. Prod. 2018, 81, 2553–2559. [Google Scholar] [CrossRef]
- Adelin, E.; Servy, C.; Martin, M.-T.; Arcile, G.; Iorga, B.I.; Retailleau, P.; Bonfill, M.; Ouazzani, J. Bicyclic and tetracyclic diterpenes from a Trichoderma symbiont of Taxus baccata. Phytochemistry 2014, 97, 55–61. [Google Scholar] [CrossRef]
- Faylo, J.L.; van Eeuwen, T.; Kim, H.J.; Gorbea Colon, J.J.; Garcia, B.A.; Murakami, K.; Christianson, D.W. Structural insight on assembly-line catalysis in terpene biosynthesis. Nat. Commun. 2021, 12, 3487. [Google Scholar] [CrossRef]
- Hong, Y.J.; Tantillo, D.J. Consequences of conformational preorganization in sesquiterpene biosynthesis: Theoretical studies on the formation of the bisabolene, curcumene, acoradiene, zizaene, cedrene, duprezianene, and sesquithuriferol sesquiterpenes. J. Am. Chem. Soc. 2009, 131, 7999–8015. [Google Scholar] [CrossRef]
- Xu, Z.; Hong, L.L.; Liu, C.S.; Kong, J.Q. Protein Engineering of PhUGT, a Donor Promiscuous Glycosyltransferase, for the Improved Enzymatic Synthesis of Antioxidant Quercetin 3-O-N-Acetylgalactosamine. J. Agric. Food Chem. 2022, 70, 4076–4085. [Google Scholar] [CrossRef] [PubMed]
- Howard-Jones, A.R.; Kruger, R.G.; Lu, W.; Tao, J.; Leimkuhler, C.; Kahne, D.; Walsh, C.T. Kinetic analysis of teicoplanin glycosyltransferases and acyltransferase reveal ordered tailoring of aglycone scaffold to reconstitute mature teicoplanin. J. Am. Chem. Soc. 2007, 129, 10082–10083. [Google Scholar] [CrossRef] [PubMed]
- Ozenver, N.; Efferth, T. Small molecule inhibitors and stimulators of inducible nitric oxide synthase in cancer cells from natural origin (phytochemicals, marine compounds, antibiotics). Biochem. Pharmacol. 2020, 176, 113792. [Google Scholar] [CrossRef] [PubMed]
Position | 2 (m, J in Hz) in DMSO-d6 | 2 (m, J in Hz) in MeOD-d4 | ||
---|---|---|---|---|
1 | 133.1, CH | 5.61, d (10.0) | 134.5, CH | 5.70, brd (10.0) |
2 | 127.8, CH | 5.64, ddd (10.0, 5.0, 2.0) | 129.0, CH | 5.68, brd (10.0) |
3 | 34.2, CH | 2.31, brs | 36.1, CH | 2.39, m |
4a | 23.2, CH2 | 1.65, m | 24.9, CH2 | 1.74, m |
4b | 1.54, m | 1.65, m | ||
5a | 19.9, CH2 | 1.31, m a | 21.6, CH2 | 1.52, m |
5b | 1.43, m a | 1.44, m | ||
6 | 40.0, CH | 2.01, m | 41.7, CH | 2.09, m |
7 | 36.4, CH | 1.45, m a | 38.2, CH | 1.52, m |
8a | 30.9, CH2 | 1.27, m a | 32.3, CH2 | 1.44, m |
8b | 1.36, m a | 1.44, m | ||
9a | 28.5, CH2 | 1.48, m a | 30.0, CH2 | 1.58, m |
9b | 1.15, m | 1.34, m | ||
10 | 77.4, CH | 3.03, dd (10.0, 2.0) | 79.6, CH | 3.23, dd (10.0, 2.0) |
10-OH | 4.26, d (6.0) | |||
11 | 71.6, C | 73.8, C | ||
11-OH | 4.03, s | |||
12 | 24.4, CH3 | 0.98, s | 24.9, CH3 | 1.13, s |
13 | 15.8, CH3 | 0.77, d (7.0) | 16.4, CH3 | 0.87, d (7.0) |
14a | 70.3, CH2 | 3.15, dd (10.0, 5.0) | 72.4, CH2 | 3.25, dd (10.0, 5.0) |
14b | 3.12, dd (10.0, 8.0) | 3.24, dd (10.0, 8.0) | ||
15 | 26.4, CH3 | 1.03, s | 25.7, CH3 | 1.16, s |
1’ | 97.1, CH | 4.67, d (3.0) | 98.9, CH | 4.81, d (3.0) |
2’ | 54.0, CH | 3.62, m a | 55.6, CH | 3.86, dd (10.0, 4.0) |
3’ | 70.6, CH | 3.45, m a | 72.7, CH | 3.62, dd (10.0, 9.0) |
3’-OH | 4.73, d (6.0) | |||
4’ | 70.7, CH | 3.12, m a | 72.3, CH | 3.36, dd (10.0, 9.0) |
4’-OH | 5.01, d (5.0) | |||
5’ | 72.8, CH | 3.38, m a | 73.7, CH | 3.58, m |
6’a | 60.7, CH2 | 3.59, m a | 62.6, CH2 | 3.80, dd (12.0, 2.0) |
6’b | 3.48, m a | 3.69, dd (12.0, 5.0) | ||
6’-OH | 4.49, t (6.0) | |||
7’ | 169.4, C | 173.6, C | ||
8’ | 22.5, CH3 | 1.83, s | 22.5, CH3 | 1.99, s |
-NH | 7.68, d (8.0) |
Position | 5 (m, J in Hz) | 6 (m, J in Hz) | 7 (m, J in Hz) | 8 (m, J in Hz) | 9(m, J in Hz) |
---|---|---|---|---|---|
1 | 1.01, d (7.0) | 0.68, d (7.0) | 1.66, brs | 1.06, d (7.0) | 1.02, d (7.0) |
2 | 1.58, m | 2.22, m | 2.46, m b | 1.53, m | |
3 | 2.11, m | ||||
4a | 1.71, m b | 1.59, m b | 2.23, m | 5.54, s | 1.93, m b |
4b | 1.47, m | 1.56, m b | 1.26, m | ||
5a | 1.89, m | 1.62, m b | 1.69, m | 2.32, m | 1.80, m b |
5b | 1.22, m b | 1.59, m b | 1.75, m b | 2.06, m | 1.47, m |
6 | 1.71, m b | 1.92, m | 2.69, ddd (10.0, 6.0, 4.0) | 2.01, ddd (9.0, 6.0, 3.0) | 1.96, m b |
7-OH | 3.89, s | ||||
8a | 1.32, m | 1.83, m b | 1.60, m b | 1.74, m b | 2.04, ddd (13.0, 10.0, 6.0) |
8b | 1.32, m | 1.57, m b | 1.69, m b | 1.57, ddd (12.0, 8.0, 4.0 ) | 1.88, ddd (13.0, 6.0, 5.0) |
9a | 1.94, m | 1.68, m b | 1.64, m b | 1.74, m b | 2.53, ddd (17.0, 10.0, 6.0) |
9b | 1.94, m | 1.65, m b | 1.72, m b | 1.75, m b | 2.42, ddd (17.0, 6.0, 5.0) |
10 | 5.08, dd (7.0, 1.0) | 3.56, dd (10.0, 5.0) | 3.52, dd (10.0, 5.0) | 3.61, dd (10.0, 5.0 ) | |
12 | 1.56, s | 1.02, s | 1.02, s | 1.02, m b | 1.19, s |
13a | 1.02, s | 3.54, m b | 3.98, br d (12.0) | 3.98, m | 1.04, s |
13b | 3.15, m b | 4.10, br d (12.0) | |||
14 | 1.00, s | 1.15, s | 1.01, s | 1.01, s | 1.11, s |
15 | 1.63, s | 1.04, s | 1.03, s | 1.02, m b | 1.20, s |
1’ | 4.91, d (3.0) | 4.63, d (3.0) | 4.58, d (3.0) | 4.60, d (3.0) | 4.92, d (3.0) |
2’ | 3.49, m b | 3.58, m b | 3.61, m b | 3.64, m b | 3.49, m b |
3’ | 3.50, m b | 3.47, m b | 3.46, m b | 3.46, m b | 3.48, m b |
3’-OH | 4.11, q (5.0) | ||||
4’ | 3.17, m b | 3.10, m b | 3.12, dd (9.8, 8.5) | 3.13, dd (9.9, 8.5) | 3.15, m |
4’-OH | 4.60, d (5.0) | ||||
5’ | 3.40, m b | 3.36, m b | 3.37, m b | 3.35, m b | 3.46, m b |
6’a | 3.53, m b | 3.47, dd (12.0, 2.0) | 3.49, m b | 3.46, m b | 3.50, dd (12.0, 2.0) |
6’b | 3.53, m b | 3.61, m b | 3.63, m | 3.61, m b | 3.55, m b |
6’-OH | 4.40, t (6.0) | ||||
8’ | 1.81, s | 1.81, s | 1.80, s | 1.80, s | 1.81, s |
-NH | 7.52, d (8.0) | 7.67, d (8.0) | 7.72, d (8.0) | 7.72, d (8.0) | 7.55, d (8.0) |
Position | 5 | 6 | 7 | 8 | 9 |
---|---|---|---|---|---|
1 | 15.0, CH3 | 9.11, CH3 | 14.1, CH3 | 20.3, CH3 | 14.3, CH3 |
2 | 45.5, CH | 35.5, CH | 134.8, C | 41.0, CH | 46.4, CH |
3 | 86.3, C | 43.2, CH | 137.5, C | 143.5, C | 86.2, C |
4 | 23.7, CH2 | 25.3, CH2 | 32.8, CH2 | 126.8, CH | 35.7, CH2 |
5 | 36.0, CH2 | 21.2, CH2 | 26.2, CH2 | 33.6, CH2 | 24.2, CH2 |
6 | 53.7, CH | 53.5, CH | 59.2, CH | 54.8, CH | 54.6, CH |
7 | 72.6, C | 82.7, C | 85.5, C | 85.0, C | 75.7, C |
8 | 41.0, CH2 | 37.5, CH2 | 34.5, CH2 | 34.1, CH2 | 30.5, CH2 |
9 | 22.4, CH2 | 24.0, CH2 | 25.3, CH2 | 26.1, CH2 | 32.3, CH2 |
10 | 125.1, CH | 87.7, CH | 85.4, CH | 86.3, CH | 214.2, C |
11 | 130.1, C | 69.7, C | 69.7, C | 69.9, C | 78.5, C |
12 | 17.4, CH3 | 25.4, CH3 | 25.5, CH3 | 25.5, CH3 | 27.5, CH3 b |
13 | 21.4, CH3 | 68.9, CH2 | 61.6, CH2 | 62.3, CH2 | 21.3, CH3 |
14 | 24.9, CH3 | 27.1, CH3 | 25.0, CH3 | 25.2, CH3 | 23.0, CH3 |
15 | 25.5, CH3 | 26.8, CH3 | 26.5, CH3 | 26.3, CH3 | 27.4, CH3 b |
1’ | 91.4, CH | 97.1, CH | 94.6, CH | 94.4, CH | 91.0, CH |
2’ | 54.7, CH | 54.1, CH | 53.8, CH | 53.7, CH | 54.7, CH |
3’ | 70.2, CH | 70.5, CH | 70.5, CH | 70.6, CH | 70.2, CH |
4’ | 70.6, CH | 70.9, CH | 70.9, CH | 70.8, CH | 70.7, CH |
5’ | 72.6, CH | 72.7, CH | 72.8, CH | 72.8, CH | 73.2, CH |
6’ | 60.7, CH2 | 60.9, CH2 | 60.9, CH2 | 60.9, CH2 | 60.8, CH2 |
7’ | 169.4, C | 169.4, C | 169.4, C | 169.3, C | 169.5, C |
8’ | 22.5, CH3 | 22.5, CH3 | 22.5, CH3 | 22.6, CH3 | 22.5, CH3 |
Position | 10 | 11 | ||
---|---|---|---|---|
1 | 45.2, C | 36.6, C | ||
2 | 47.5, CH | 1.79, dd (8.0, 3.0) | 42.0, CH | 1.57, m |
3a | 77.8, CH | 3.64, dd (6.0, 3.0) | 26.8, CH2 | 2.09, m |
3b | 1.51, m | |||
4a | 29.7, CH2 | 2.15, m | 30.8, CH2 | 2.24, m |
4b | 1.27, m b | 1.85, m | ||
5 | 27.3, CH | 2.38, m b | 125.9, C | |
6 | 50.0, C | 135.6, C | ||
7a | 29.3, CH | 1.86, m b | 25.4, CH2 | 2.16, m |
7b | 1.22, m | |||
8a | 27.3, CH2 | 2.33, m b | 38.2, CH2 | 2.42, dd (10.0, 4.0) |
8b | 1.90, m b | 1.94, dt (12.0, 4.0) | ||
9 | 145.3, C | 138.4, C | ||
10 | 149.7, C | 127.6, CH | 4.57, brs | |
11 | 198.0, C | 70.0, CH | 4.28, td (11.0, 3.0) | |
12a | 59.2, CH2 | 2.61, d (16.0) | 41.6, CH2 | 2.56, dd (11.0, 5.0) |
12b | 2.26, d (16.0) | 1.85, brd (11.0) | ||
13 | 40.0, C | 133.1, C | ||
14 | 50.9, CH | 2.10, m b | 130.6, CH | 5.25, dd (12.0, 3.0) |
15a | 27.0, CH2 | 1.84, m | 33.0, CH2 | 2.72, ddd (16.0, 12.0, 6.0) |
15b | 1.03, dd (14.0, 9.0) | 1.82, m | ||
16 | 26.5, CH3 | 0.83, s | 24.0, CH3 | 0.78, s |
17 | 23.6, CH3 | 1.24, s | 32.6, CH3 | 0.91, s |
18 | 20.4, CH3 | 1.06, d (7.0) | 21.5, CH3 | 1.65, s |
19a | 21.1, CH3 | 1.37, s | 57.9, CH2 | 3.98, d (12.0) |
19b | 3.69, d (12.0) | |||
20 | 21.9, CH3 | 2.01, s | 16.8, CH3 | 1.53, brs |
1’ | 94.7, CH | 4.85, d (3.0) | 93.4, CH | 4.56, d (3.0) |
2’ | 54.7, CH | 3.46, m b | 53.6, CH | 3.61, m |
3’ | 70.2, CH | 3.15, m | 70.8, CH | 3.16, m |
4’ | 70.7, CH | 3.48, m | 70.7, CH | 3.44, m |
5’ | 73.1, CH | 3.50, m | 72.6, CH | 3.46, m |
6’a | 60.9,CH2 | 3.61, m b | 60.7, CH2 | 3.58, m |
6’b | 3.47, m | 3.51, dd (12.0, 5.0) | ||
7’ | 169.3, C | 169.2, C | ||
8’ | 22.5, CH3 | 1.81, s | 22.6, CH3 | 1.79, s |
-NH | 7.58, d (8.0) | 7.49, d (8.0) |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2022 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Li, H.; Liu, X.; Hu, Z.; Wang, L. Novel Sesquiterpene and Diterpene Aminoglycosides from the Deep-Sea-Sediment Fungus Trichoderma sp. SCSIOW21. Mar. Drugs 2023, 21, 7. https://doi.org/10.3390/md21010007
Li H, Liu X, Hu Z, Wang L. Novel Sesquiterpene and Diterpene Aminoglycosides from the Deep-Sea-Sediment Fungus Trichoderma sp. SCSIOW21. Marine Drugs. 2023; 21(1):7. https://doi.org/10.3390/md21010007
Chicago/Turabian StyleLi, Hongxu, Xinyi Liu, Zhangli Hu, and Liyan Wang. 2023. "Novel Sesquiterpene and Diterpene Aminoglycosides from the Deep-Sea-Sediment Fungus Trichoderma sp. SCSIOW21" Marine Drugs 21, no. 1: 7. https://doi.org/10.3390/md21010007
APA StyleLi, H., Liu, X., Hu, Z., & Wang, L. (2023). Novel Sesquiterpene and Diterpene Aminoglycosides from the Deep-Sea-Sediment Fungus Trichoderma sp. SCSIOW21. Marine Drugs, 21(1), 7. https://doi.org/10.3390/md21010007