Three New and Eleven Known Unusual C25 Steroids: Activated Production of Silent Metabolites in a Marine-Derived Fungus by Chemical Mutagenesis Strategy using Diethyl Sulphate
Abstract
:1. Introduction
2. Results and Discussions
2.1. Fermentation, Isolation of 1–14, and Identification of Known Steroids 4–14
2.2. Structure Determination of New Compounds 1–3
Position | 1 b | 2 b | 4 | 5 | 6 | 7 | 10 | 11 |
---|---|---|---|---|---|---|---|---|
1 | 5.55 dd (8.0, 6.4) | 5.55 dd (8.2, 6.4) | 5.56 dd (8.2, 6.3) | 5.55 dd (8.1, 6.4) | 5.55 dd (8.1, 6.2) | 5.55 dd (8.1, 6.3) | 5.53 dd (8.4, 6.4) | 5.53 dd (8.3, 6.4) |
2α | 2.07 m | 2.07 m | 2.07 m | 2.07 m | 2.07 m | 2.08 m | 2.07 m | 2.07 m |
β | 2.34 ddd (13.0, 11.4, 6.4) | 2.34 ddd (13.2, 11.2, 6.4) | 2.34 ddd (13.0, 11.5, 6.3) | 2.34 ddd (13.2, 11.2, 6.4) | 2.34 m | 2.34 ddd (12.7, 11.3, 6.3) | 2.33 ddd (13.1, 11.3, 6.3) | 2.33 ddd (13.0, 11.2, 6.3) |
3 | 3.12 m | 3.12 m | 3.12 m | 3.12 m | 3.12 m | 3.13 m | 3.11 m | 3.11 m |
4α | 2.63 br d (13.1) | 2.63 br d (12.8) | 2.63 br d (13.2) | 2.63 br d (13.1) | 2.63 br d (13.0) | 2.64 br d (13.1) | 2.62 br d (13.0) | 2.62 br d (12.9) |
β | 1.53 m | 1.52 m | 1.53 m | 1.52 m | 1.52 m | 1.53 m | 1.51 m | 1.51 m |
5 | 2.69 m | 2.69 m | 2.68 m | 2.68 m | 2.68 m | 2.68 m | 2.67 m | 2.67 m |
7 | 5.43 s | 5.43 s | 5.42 s | 5.42 s | 5.42 s | 5.42 s | 5.37 s | 5.38 s |
9 | 2.86 dd (12.0, 5.5) | 2.86 dd (11.3, 5.6) | 2.85 dd (11.7, 5.4) | 2.84 dd (11.8, 5.6) | 2.85 dd (12.0, 5.4) | 2.85 dd (11.4, 5.7) | 2.79 dd (12.2, 5.4) | 2.79 dd (12.1, 5.5) |
11α | 1.54 m | 1.52 m | 1.54 m | 1.55 m | 1.54 m | 1.56 m | 1.50 m | 1.49 m |
β | 1.75 m | 1.74 m | 1.80 m | 1.76 m | 1.80 m | 1.79 m | 1.75 m | 1.75 m |
12α | 1.41 td (12.7, 4.1) | 1.40 td (12.8, 4.3) | 1.50 m | 1.43 td (13.7, 4.6) | 1.47 m | 1.43 m | 1.42 m | 1.42 m |
β | 1.63 m | 1.69 m | 1.74 m | 1.73 m | 1.74 m | 1.74 m | 2.12 m | 2.13 m |
14 | 2.26 br t (8.9) | 2.25 br t (8.6) | 2.26 br t (9.0) | 2.22 br t (8.8) | 2.25 br t (8.6) | 2.22 br t (9.0) | 2.10 m | 2.10 m |
15α | 1.62 m | 1.61 m | 1.56 m | 1.57 m | 1.56 m | 1.57 m | 1.38 m | 1.38 m |
β | 1.62 m | 1.61 m | 1.52 m | 1.52 m | 1.49 m | 1.53 m | 1.46 m | 1.47 m |
16α | 1.66 m | 1.69 m | 1.83 m | 1.82 m | 1.83 m | 1.82 m | 1.56 m | 1.58 m |
β | 1.84 m | 1.85 m | 1.65 m | 1.68 m | 1.67 m | 1.68 m | 1.66 m | 1.66 m |
17 | 2.89 br t (9.8) | 2.86 t (9.5) | 2.24 br t (9.5) | 2.27 br t (9.7) | 2.23 br t (9.1) | 2.27 br t (9.6) | 1.66 m | 1.66 m |
18α | 2.48 br s | 2.48 br s | 2.48 br s | 2.48 br s | 2.48 br s | 2.48 br s | 2.47 br s | 2.47 br s |
β | 2.48 br s | 2.48 br s | 2.48 br s | 2.48 br s | 2.48 br s | 2.48 br s | 2.47 br s | 2.47 br s |
19 | 0.64 s | 0.63 s | 0.50 s | 0.53 s | 0.49 s | 0.53 s | 0.70 s | 0.70 s |
21 | 1.70 s | 1.70 d (1.1) | 1.68 s | 1.65 s | 1.65 s | 1.64 s | 1.20 s | 1.20 s |
22 | 5.33 d (9.2) | 5.33 dd (9.3, 1.1) | 5.17 d (8.7) | 5.15 d (8.8) | 5.22 d (8.2) | 5.22 d (8.4) | 5.62 dd (15.6, 0.9) | 5.64 dd (15.6, 1.1) |
23 | 3.99 ddd (9.2, 6.0, 4.6) | 4.11 ddd (9.3, 4.9, 4.1) | 3.96 ddd (8.7, 6.6, 4.3) | 3.95 ddd (8.8, 6.6, 4.3) | 4.09 ddd (8.2, 4.7, 4.0) | 4.06 ddd (8.4, 4.7, 3.9) | 5.49 dd (15.6, 5.9) | 5.49 dd (15.6, 5.3) |
24 | 3.41 m | 3.47 m | 3.41 m | 3.40 m | 3.49 m | 3.50 m | 4.09 m | 4.09 m |
25 | 1.00 d (6.3) | 1.01 d (6.3) | 0.95 d (6.3) | 0.96 d (6.3) | 0.96 d (6.3) | 0.98 d (6.3) | 1.08 d (6.4) | 1.08 d (6.4) |
3-OH | 4.62 d (4.3) | 4.62 d (4.3) | 4.59 d (4.4) | 4.63 d (4.3) | 4.62 d (4.3) | 4.60 d (4.2) | 4.61 d (4.3) | 4.61 d (4.3) |
20-OH | - | - | - | - | - | - | 4.23 s | 4.22 s |
23-OH | 4.30 d (4.6) | 4.28 d (4.9) | 4.46 d (4.3) | 4.48 d (4.3) | 4.40 d (4.7) | 4.35 d (4.7) | - | - |
24-OH | 4.31 d (4.7) | 4.31 d (4.9) | 4.33 d (4.1) | 4.39 d (4.1) | 4.29 d (5.0) | 4.27 d (4.6) | 4.57 d (4.4) | 4.57 d (4.6) |
Position | 1 b | 2 b | 3 b,c | 4 | 5 | 6 | 7 | 8 c | 9 | 10 | 11 | 12 | 13 | 14 |
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
1 | 122.1 | 122.1 | 122.1 | 122.1 | 122.1 | 122.1 | 122.1 | 122.1 | 122.1 | 122.0 | 121.9 | 122.0 | 122.0 | 122.1 |
2 | 36.0 | 36.0 | 36.0 | 35.9 | 36.0 | 36.0 | 36.0 | 35.9 | 36.0 | 36.0 | 35.9 | 35.8 | 35.7 | 35.8 |
3 | 63.1 | 63.1 | 63.1 | 63.1 | 63.1 | 63.1 | 63.1 | 63.1 | 63.1 | 63.1 | 63.1 | 64.6 | 64.6 | 64.7 |
4 | 41.4 | 41.4 | 41.4 | 41.4 | 41.4 | 41.4 | 41.4 | 41.4 | 41.4 | 41.4 | 41.3 | 41.8 | 41.7 | 41.8 |
5 | 48.1 | 48.1 | 48.1 | 48.1 | 48.1 | 48.1 | 48.1 | 48.1 | 48.1 | 48.1 | 48.1 | 48.7 | 48.7 | 48.7 |
6 | 204.1 | 204.1 | 204.1 | 204.1 | 204.1 | 204.1 | 204.1 | 204.1 | 204.1 | 204.1 | 204.1 | 205.5 | 205.5 | 205.4 |
7 | 124.5 | 124.5 | 124.5 | 124.3 | 124.3 | 124.2 | 124.3 | 124.3 | 124.3 | 124.6 | 124.56 | 125.1 | 125.1 | 125.3 |
8 | 157.0 | 157.1 | 157.0 | 156.9 | 157.0 | 157.0 | 157.0 | 156.9 | 156.93/156.90 | 157.1 | 157.1 | 158.0 | 158.0 | 157.4 |
9 | 53.2 | 53.3 | 53.3 | 53.1 | 53.3 | 53.2 | 53.3 | 53.2 | 53.2 | 53.2 | 53.2 | 54.2 | 54.2 | 54.1 |
10 | 145.5 | 145.5 | 145.5 | 145.5 | 145.5 | 145.6 | 145.6 | 145.5 | 145.5 | 145.7 | 145.7 | 146.1 | 146.0 | 146.0 |
11 | 27.2 | 27.3 | 27.3 | 27.5 | 27.4 | 27.5 | 27.4 | 27.4 | 27.5 | 27.5 | 27.5 | 27.8 | 27.8 | 27.8 |
12 | 36.7 | 36.6 | 36.4 | 37.3 | 36.9 | 37.2 | 36.9 | 37.07/37.13 | 37.08/37.13 | 38.9 | 38.9 | 39.5 | 39.5 | 39.4 |
13 | 47.8 | 47.8 | 47.73/47.66 | 46.6 | 46.9 | 46.6 | 46.9 | 46.76/46.84 | 46.74/46.76 | 45.9 | 45.9 | 46.5 | 46.4 | 46.5 |
14 | 54.2 | 54.3 | 54.2 | 54.4 | 54.3 | 54.5 | 54.3 | 54.3 | 54.4 | 55.3 | 55.2 | 56.1 | 56.0 | 55.9 |
15 | 22.6 | 22.6 | 22.7 | 22.2 | 22.4 | 22.3 | 22.4 | 22.3 | 22.34/22.38 | 22.1 | 22.1 | 22.7 | 22.6 | 22.9 |
16 | 24.1 | 24.0 | 24.1/24.0 | 23.7 | 23.7 | 23.8 | 23.7 | 23.8/23.7 | 23.82/23.80 | 22.3 | 22.3 | 22.6 | 22.6 | 21.4 |
17 | 50.9 | 51.0 | 51.2 | 58.6 | 58.9 | 58.6 | 58.9 | 58.9 | 58.87/58.92 | 60.1 | 60.1 | 60.3 | 60.4 | 55.4 |
18 | 27.2 | 27.2 | 27.3 | 27.2 | 27.2 | 27.2 | 27.2 | 27.2 | 27.2 | 27.2 | 27.1 | 27.7 | 27.7 | 27.7 |
19 | 14.8 | 14.7 | 14.7 | 13.3 | 13.5 | 13.3 | 13.4 | 13.53/13.49 | 13.48/13.44 | 14.3 | 14.3 | 14.9 | 15.0 | 14.3 |
20 | 136.7 | 136.6 | 140.1/140.0 | 135.8 | 135.8 | 134.9 | 135.0 | 139.5 | 138.78/138.67 | 73.3 | 73.3 | 79.5 | 79.7 | 76.9 |
21 | 22.2 | 22.3 | 22.2/22.0 | 18.9 | 17.3 | 18.8 | 17.3 | 18.2/18.5 | 18.04/18.27 | 29.0 | 28.9 | 21.8 | 21.8 | 20.8 |
22 | 130.7 | 130.8 | 126.9 | 127.1 | 128.2 | 127.3 | 128.2 | 124.3/124.1 | 124.4/124.3 | 136.2 | 136.0 | 134.5 | 134.5 | 77.6 |
23 | 70.4 | 70.3 | 79.9/79.7 | 72.2 | 72.0 | 71.6 | 71.5 | 81.86/81.94 | 81.3/81.4 | 130.8 | 130.8 | 134.2 | 134.4 | 129.4 |
24 | 70.1 | 69.8 | 68.6 | 70.3 | 70.3 | 69.8 | 69.8 | 68.7 | 68.32/68.38 | 66.7 | 66.3 | 68.8 | 68.8 | 130.4 |
25 | 19.8 | 18.5 | 18.8/19.9 | 19.1 | 18.9 | 18.3 | 18.5 | 18.9 | 18.9/18.8 | 24.1 | 24.0 | 23.8 | 23.7 | 18.2 |
23-OCH3 | - | - | 55.0/54.9 | - | - | - | - | 55.44/55.39 | 55.5 | - | - | 49.8 | 49.9 | - |
2.3. Absolute Configuration Assignment of vic-Diols in 4–7 and 14 by ICD Analysis
Position | 3 b | 8 | 9 | 12 | 13 | 14 |
---|---|---|---|---|---|---|
1 | 5.55 dd (8.1, 6.4) | 5.56 dd (8.3, 6.3) | 5.55 dd (8.1, 6.5) | 5.55 dd (8.2, 6.2) | 5.54 m | 5.56 dd (8.4, 6.3) |
2α | 2.07 m | 2.07 m | 2.07 m | 2.23 m | 2.22 m | 2.24 ddt (13.4, 8.4, 2.2) |
β | 2.34 ddd (13.3, 11.4, 6.4) | 2.34 m | 2.34 m | 2.47 ddd (13.4, 11.3, 6.2) | 2.46 ddd (13.1, 11.4, 6.0) | 2.48 ddd (13.4, 11.3, 6.3) |
3 | 3.11 m | 3.12 m | 3.12 m | 3.47 m | 3.46 m | 3.50 m |
4α | 2.63 br d (13.0) | 2.63 br d (13.2) | 2.63 br d (13.1) | 2.87 br d (12.8) | 2.87 br d (12.8) | 2.89 br d (13.0) |
β | 1.52 m | 1.53 m | 1.52 m | 1.68 m | 1.67 m | 1.66 m |
5 | 2.69 m | 2.68 m | 2.68 m | 2.72 m | 2.71 m | 2.74 m |
7 | 5.43 s | 5.43 s | 5.43 s | 5.55 br s | 5.54 br s | 5.58 br s |
9 | 2.84 dd (11.2, 6.0) | 2.85 dd (11.5, 5.5) | 2.85 dd (11.5, 5.4) | 2.74 dd (12.5, 5.8) | 2.73 dd (12.6, 5.8) | 2.76 dd (12.0, 5.8) |
11α | 1.50 m | 1.54 m | 1.54 m | 1.56 m | 1.55 m | 1.59 m |
β | 1.77 m | 1.79 m | 1.78 m | 1.65 m | 1.64 m | 1.86 m |
12α | 1.41 td (12.4, 4.0) | 1.49 m | 1.49 m | 1.43 td (13.0, 4.8) | 1.42 m | 1.47 td (13.1, 4.4) |
β | 1.68 m | 1.75 m | 1.75 m | 2.18 m | 2.17 m | 2.16 m |
14 | 2.29 br t (7.9) | 2.26 br t (9.2) | 2.25 br t (9.2) | 2.06 ddd (12.0, 6.4, 1.5) | 2.05 ddd (12.4, 6.6, 1.4) | 2.08 ddd (12.0, 6.1, 1.6) |
15α | 1.62 m | 1.57 m | 1.57 m | 1.46 m | 1.46 m | 1.62 m |
β | 1.62 m | 1.53 m | 1.52 m | 1.58 m | 1.57 m | 1.54 m |
16α | 1.71 m | 1.84 m | 1.83 m | 1.74 m | 1.71 m | 1.91 m |
β | 1.90 m | 1.70 m | 1.70 m | 1.78 m | 1.77 m | 1.67 m |
17 | 2.84 m (covered by H-9 signals) | 2.33 m | 2.33 m | 1.80 m | 1.79 m | 1.68 m |
18α | 2.48 br s | 2.48 br s | 2.48 br s | 2.54 br s | 2.53 m | 2.54 d (13.6) |
β | 2.48 br s | 2.48 br s | 2.48 br s | 2.55 m | 2.54 m | 2.59 dd (13.6, 6.0) |
19 | 0.65 s/0.67 s | 0.55 s/0.53 s | 0.54 s/0.53 s | 0.73 s | 0.71 s | 0.86 s |
21 | 1.77 s | 1.71 s | 1.68 s | 1.28 s | 1.27 s | 1.25 s |
22 | 5.17 dd (10.2, 1.0)/5.14 dd (10.2, 1.0) | 5.02 d (9.4) | 5.12 d (8.9) | 5.66 d (16.0) | 5.67 d (16.0) | 3.90 dd (8.3, 0.6) |
23 | 3.84 dd (10.0, 4.0)/3.74 dd (10.0, 5.9) | 3.71 dd (9.4, 6.7) | 3.77 dd (8.9, 4.0)/3.79 dd (8.9, 3.8) | 5.55 dd (16.0, 6.0) | 5.54 dd (16.0, 6.1) | 5.41 ddq (15.3, 8.2, 1.6) |
24 | 3.56 m/3.50 m | 3.53 m | 3.60 m | 4.34 m | 4.33 m | 5.77 dqd (15.3, 6.5, 0.6) |
25 | 1.03 d (6.3)/1.01 d (6.3) | 0.95 d (6.4)/0.94 d (6.3) | 0.99 d (6.3)/0.97d (6.1) | 1.28 d (6.3) | 1.27 d (6.3) | 1.73 dd (6.5, 1.6) |
3-OH | 4.63 d (4.3) | 4.62 d (4.2) | 4.63 d (3.8) | Not detected | Not detected | Not detected |
20-OH | - | - | - | - | - | Not detected |
24-OH | 4.47 d (4.9) /4.44 d (4.7) | 4.45 d (3.9)/4.44 d (3.8) | 4.44 d (3.6) | Not detected | Not detected | Not detected |
20-OCH3 | - | - | - | 3.11 s | 3.12 d (0.7) | - |
23-OCH3 | 3.11 s | 3.147 s/3.152 s | 3.15 s/3.16 s | - | - | - |
2.4. Inhibitory Effects of 1–14 on Several Human Cancer Cell Lines
2.5. Discussions
3. Experimental Section
3.1. General Experimental
3.2. MTT Assay
3.3. Fermentation and EtOAc Extract Preparation
3.3.1. Initial Fungal Strain and its Mutant the 1–14 Producing Strain
3.3.2. Preparation of Spore Suspensions
3.3.3. Fermentation and Extraction
3.4. Isolation of Compounds 1–14
3.5. Physicochemical and Spectroscopic Data for 1–14
3.6. ICD Measurements for 1, 2, 4–7 and 14 Using Dimolybdenum Tetracetate
3.7. HPLC-PDAD-UV and HPLC-ESI-MS Analyses
4. Conclusions
Supplementary Files
Acknowledgments
Author Contributions
Conflicts of Interest
References
- Du, L.; Zhu, T.J.; Fang, Y.; Gu, Q.; Zhu, W. Unusual C25 steroid isomers with bicyclo[4.4.1]A/B rings from a volcano ash-derived fungus Penicillium citrinum. J. Nat. Prod. 2008, 71, 1343–1351. [Google Scholar] [CrossRef]
- Kozlovsky, A.G.; Zhelifonova, V.P.; Ozerskaya, S.M.; Vinokurova, N.G.; Adanin, V.M.; Gräfe, U. Cyclocitrinol, a new fungal metabolite from Penicillium citrinum. Pharmazie 2000, 55, 470–471. [Google Scholar]
- Amagata, T.; Amagata, A.; Tenney, K.; Valeriote, F.A.; Lobkovsky, E.; Clardy, J.; Crews, P. Unusual C25 steroids produced by a sponge-derived Penicillium citrinum. Org. Lett. 2003, 5, 4393–4396. [Google Scholar] [CrossRef]
- Marinhoa, A.M.R.; Rodrigues-Filho, E.; Ferreira, A.G.; Santos, L.S. C25 steroid epimers produced by Penicillium janthinellum, a fungus isolated from fruits Melia azedarach. J. Braz. Chem. Soc. 2005, 16, 1342–1346. [Google Scholar] [CrossRef]
- Schneider, P.; Misiek, M.; Hoffmeister, D. In vivo and in vitro production options for fungal secondary metabolites. Mol. Pharm. 2008, 5, 234–242. [Google Scholar] [CrossRef]
- Saleem, M.; Ali, M.S.; Hussain, S.; Jabbar, A.; Ashraf, M.; Lee, Y.S. Marine natural products of fungal origin. Nat. Prod. Rep. 2007, 24, 1142–1152. [Google Scholar] [CrossRef]
- Rateb, M.E.; Ebel, R. Secondary metabolites of fungi from marine habitats. Nat. Prod. Rep. 2011, 28, 290–344. [Google Scholar]
- Blunt, J.W.; Copp, B.R.; Keyzers, R.A.; Munro, M.H.G.; Prinsep, M.R. Marine natural products. Nat. Prod. Rep. 2013, 30, 237–323. [Google Scholar]
- Brakhage, A.A.; Schroeckh, V. Fungal secondary metabolites—Strategies to activate silent gene clusters. Fungal Genet. Biol. 2011, 48, 15–22. [Google Scholar] [CrossRef]
- Bode, H.B.; Bethe, B.; Höfs, R.; Zeeck, A. Big effects from small changes: Possible ways to explore nature’s chemical diversity. ChemBioChem 2002, 3, 619–627. [Google Scholar]
- Henrikson, J.C.; Hoover, A.R.; Joyner, P.M.; Cichewicz, R.H. A chemical epigenetics approach for engineering the in situ biosynthesis of a cryptic natural product from Aspergillus niger. Org. Biomol. Chem. 2009, 7, 435–438. [Google Scholar] [CrossRef]
- Takahashi, J.A.; Teles, A.P.C.; Bracarense, A.A.P.; Gomes, D.C. Classical and epigenetic approaches to metabolite diversification in filamentous fungi. Phytochem. Rev. 2013, 12, 773–789. [Google Scholar] [CrossRef]
- Ochi, K. From microbial differentiation to ribosome engineering. Biosci. Biotechnol. Biochem. 2007, 71, 1373–1386. [Google Scholar] [CrossRef]
- Hosaka, T.; Ohnishi-Kameyama, M.; Muramatsu, H.; Murakami, K.; Tsurumi, Y.; Kodani, S.; Yoshida, M.; Fujie, A.; Ochi, K. Antibacterial discovery in actinomycetes strains with mutations in RNA polymerase or ribosomal protein S12. Nat. Biotechnol. 2009, 27, 462–464. [Google Scholar]
- Chai, Y.-J.; Cui, C.-B.; Li, C.-W.; Wu, C.-J.; Tian, C.-K.; Hua, W. Activation of the dormant secondary metabolite production by introducing gentamicin-resistance in a marine-derived Penicillium purpurogenum G59. Mar. Drugs 2012, 10, 559–582. [Google Scholar] [CrossRef]
- Wu, C.J.; Cui, C.B.; Tian, C.K.; Li, C.W. Antitumor metabolites produced by two Penicillium purpurogenum G59 mutants. J. Int. Pharm. Res. 2010, 37, 122–126. [Google Scholar]
- Fang, S.-M.; Cui, C.-B.; Li, C.-W.; Wu, C.-J.; Zhang, Z.-J.; Li, L.; Huang, X.-J.; Ye, W.-C. Purpurogemutantin and purpurogemutantidin, new drimenyl cyclohexenone derivatives produced by a mutant obtained by diethyl sulfate mutagenesis of a marine-derived Penicillium purpurogenum G59. Mar. Drugs 2012, 10, 1266–1287. [Google Scholar] [CrossRef]
- Fang, S.-M.; Wu, C.-J.; Li, C.-W.; Cui, C.-B. A practical strategy to discover new antitumor compounds by activating silent metabolite production in fungi by diethyl sulphate mutagenesis. Mar. Drugs 2014, in press. [Google Scholar]
- Wu, C.-J.; Li, C.-W.; Cui, C.-B. Seven new and two known lipopeptides as well as five known polyketides: The activated production of silent metabolites in a marine-derived fungus by chemical mutagenesis strategy using diethyl sulphate. Mar. Drugs 2014, in press. [Google Scholar]
- Tian, C.K.; Cui, C.B.; Han, X.X. Isolation of fungal strains in unusual environment and screening for their antitumor activity. J. Int. Pharm. Res. 2008, 35, 401–405. [Google Scholar]
- Jarvis, B.B.; Wang, S.; Ammon, H.L. Trichoverroid stereoisomers. J. Nat. Prod. 1996, 59, 254–261. [Google Scholar] [CrossRef]
- Bari, L.D.; Pescitelli, G.; Pratelli, C.; Pini, D.; Salvadori, P. Determination of absolute configuration of acyclic 1,2-diols with Mo2(OAc)4. 1. Snatzke’s method revisited. J. Org. Chem. 2001, 66, 4819–4825. [Google Scholar] [CrossRef]
- Frelek, J.; Ruśkowska, P.; Suszczyńska, A.; Szewczyk, K.; Osuch, A.; Jarosz, S.; Jagodziński, J. Configurational assignment of sugar erythro-1,2-diols from their electronic circular dichroism spectra with dimolybdenum tetraacetate. Tetrahedron Asymmetry 2008, 19, 1709–1713. [Google Scholar] [CrossRef]
- Górecki, M.; Jabłońska, E.; Kruszewska, A.; Suszczyńska, A.; Urbańczyk-Lipkowska, Z.; Gerards, M.; Morzycki, J.W.; Szczepek, W.J.; Frelek, J. Practical method for the absolute configuration assignment of tert/tert 1,2-diols using their complexes with Mo2(OAc)4. J. Org. Chem. 2007, 72, 2906–2916. [Google Scholar] [CrossRef]
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Xia, M.-W.; Cui, C.-B.; Li, C.-W.; Wu, C.-J. Three New and Eleven Known Unusual C25 Steroids: Activated Production of Silent Metabolites in a Marine-Derived Fungus by Chemical Mutagenesis Strategy using Diethyl Sulphate. Mar. Drugs 2014, 12, 1545-1568. https://doi.org/10.3390/md12031545
Xia M-W, Cui C-B, Li C-W, Wu C-J. Three New and Eleven Known Unusual C25 Steroids: Activated Production of Silent Metabolites in a Marine-Derived Fungus by Chemical Mutagenesis Strategy using Diethyl Sulphate. Marine Drugs. 2014; 12(3):1545-1568. https://doi.org/10.3390/md12031545
Chicago/Turabian StyleXia, Ming-Wen, Cheng-Bin Cui, Chang-Wei Li, and Chang-Jing Wu. 2014. "Three New and Eleven Known Unusual C25 Steroids: Activated Production of Silent Metabolites in a Marine-Derived Fungus by Chemical Mutagenesis Strategy using Diethyl Sulphate" Marine Drugs 12, no. 3: 1545-1568. https://doi.org/10.3390/md12031545
APA StyleXia, M. -W., Cui, C. -B., Li, C. -W., & Wu, C. -J. (2014). Three New and Eleven Known Unusual C25 Steroids: Activated Production of Silent Metabolites in a Marine-Derived Fungus by Chemical Mutagenesis Strategy using Diethyl Sulphate. Marine Drugs, 12(3), 1545-1568. https://doi.org/10.3390/md12031545