New 2-Methoxy Acetylenic Acids and Pyrazole Alkaloids from the Marine Sponge Cinachyrella sp.
Abstract
:1. Introduction
2. Results
2.1. Cinachylenic Acid B (1)
2.2. Cinachylenic Acid C (2)
2.3. Cinachylenic Acid D (3)
2.4. Cinachylenic Acid A (4)
2.5. Absolute Configuration of Cinachylenic Acids A–D (1–4)
2.6. Cinachyrazole A (5)
2.7. Cinachyrazole B (6)
2.8. Cinachyrazole C (7)
2.9. Proposed Biosynthetic Pathway for 5–7
2.10. Bioactivity
3. Discussion
4. Materials and Methods
4.1. General Procedures
4.2. Sponge Material
4.3. Extraction and Isolation
5. Conclusions
Supplementary Materials
Acknowledgments
Author contributions
Conflicts of Interest
References
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Position | 13C, Type 1 | 1H, m (J in Hz) | COSY | HMBC |
---|---|---|---|---|
1 | 176.0, C | - 3 | - 3 | - 3 |
2 | 80.9, CH | 3.76, dd (7.6, 4.6) | 3-H | C-1/3/4/19 |
3 | 32.8, CH2 | 1.74, m; 1.68, m | 2/4-H | C-1/2/4/5 |
4 | 25.3, CH2 | 1.50 2 | 3/5-H | C-2/5/6 |
5 | 33.1, CH2 | 2.10, br qt (7.2, 1.9) | 4/6-H | C-3/4/6/7 |
6 | 142.7, CH | 5.95, dt (15.8, 7.1) | 5/7-H | C-5/8 |
7 | 111.4, CH | 5.46, dt (15.8, 1.9) | 6-H | - 3 |
8 | 79.9, C | - 3 | - 3 | - 3 |
9 | 89.2, C | - 3 | - 3 | - 3 |
10 | 19.6, CH2 | 2.26, br td (7.0, 2.1) | 11-H | C-7/8/9/11/12 |
11 | 29.5, CH2 | 1.49 2; 1.40, m | 10/12-H | C-9/10/13 |
12 | 29.5, CH2 | 1.30 2 | 11/13-H | - 3 |
13 | 30.4, CH2 | 1.30 2 | 12/14-H | - 3 |
14 | 30.4, CH2 | 1.30 2 | 13/15-H | - 3 |
15 | 30.4, CH2 | 1.30 2 | 14/16-H | - 3 |
16 | 32.9, CH2 | 1.30 2 | 15/17-H | - 3 |
17 | 23.5, CH2 | 1.33 2 | 16/18-H | C-16/18 |
18 | 14.0, CH3 | 0.90, t (7.0) | 17-H | C-16/17 |
19 | 57.9, CH3 | 3.36, s | - 3 | C-2 |
Position | 13C, Type 1 | 1H, m (J in Hz) | COSY | HMBC |
---|---|---|---|---|
1 | – 2 | - 3 | - 3 | - 3 |
2 | 80.9, CH | 3.76, dd (7.6, 4.6) | 3-H | C-4/5/19 |
3 | 32.8, CH2 | 1.74, m; 1.68, m | 2/4-H | - 3 |
4 | 25.3, CH2 | 1.50, m | 3/5-H | C-2/5/6 |
5 | 33.1, CH2 | 2.10, br qt (7.3, 2.0) | 4/6-H | C-3/4/6/7 |
6 | 142.8, CH | 5.95, dt (15.7, 7.3) | 5/7-H | C-8 |
7 | 111.4, CH | 5.46, d (15.7) | 6-H | - 3 |
8 | 80.0, C | - 3 | - 3 | - 3 |
9 | 88.6, C | - 3 | - 3 | - 3 |
10 | 20.6, CH2 | 2.28, td (7.1, 2.1) | 11-H | C-8/9/11/12 |
11 | 32.7, CH2 | 2.16, br q (6.5) | 10/12-H | C-9/12/13 |
12 | 129.8, CH | 5.45 dt (15.3, 6.5) | 11/13-H | - 3 |
13 | 132.3, CH | 5.48 dt (15.3, 6.0) | 12/14-H | - 3 |
14 | 32.5, CH2 | 2.00, br q (6.0) | 13/15-H | C-12/13/16 |
15 | 30.4, CH2 | 1.36, m | 14/16-H | - 3 |
16 | 31.9, CH2 | 1.30, m | 15/17-H | C-15 |
17 | 23.3, CH2 | 1.33, m | 16/18-H | C-16 |
18 | 14.0, CH3 | 0.90, t (6.9) | 17-H | C-16/17 |
19 | 58.0, CH3 | 3.36, s | - 3 | C-2 |
Position | 13C, Type 1 | 1H, m (J in Hz) | COSY | HMBC |
---|---|---|---|---|
1 | – 2 | - 4 | - 4 | - 4 |
2 | 81.2, CH | 3.74, dd (8.1, 4.7) | 3-H | |
3 | 32.6, CH2 | 1.74, m; 1.67, m | 2/4-H | C-2/4/5 |
4 | 25.4, CH2 | 1.50 3 | 3/5-H | C-2/5/6 |
5 | 33.2, CH2 | 2.10, br qt (7.2, 1.9) | 4/6-H | C-3/4/6/7 |
6 | 142.8, CH | 5.95, dt (15.9, 7.1) | 5/7-H | C-5/8 |
7 | 111.4, CH | 5.46, d (15.9) | 6-H | - 4 |
8 | 79.8, C | - 4 | - 4 | - 4 |
9 | 88.9, C | - 4 | - 4 | - 4 |
10 | 19.5, CH2 | 2.25, td (7.0, 2.2) | 11-H | C-8/9/11/12 |
11 | 29.8, CH2 | 1.49 3 | 10/12-H | C-9/10 |
12 | 29.1, CH2 | 1.30, m | 11/13-H | - 4 |
13 | 29.9, CH2 | 1.38, m | 12/14-H | C-14 |
14 | 30.3, CH2 | 1.99 3 | 13/15-H | C-12/13 |
15 | – 2 | 5.43 3 | 14/16-H | - 4 |
16 | 132.9, CH | 5.39, dt (15.3, 6.3) | 15/17-H | - 4 |
17 | 26.3, CH2 | 1.99 3 | 16/18-H | C-18 |
18 | 14.2, CH3 | 0.96, t (7.5) | 17-H | C-16/17 |
19 | 58.0, CH3 | 3.36, s | - 4 | C-2 |
Position | 5 | 6 | 7 | |||
---|---|---|---|---|---|---|
1H, m | 13C, Type 1 | 1H, m | 13C, Type 1 | 1H, m | 13C, Type 1 | |
3 | - 3 | 151.7, C | - 3 | 151.2, C | - 3 | 147.9, C |
4 | - 3 | 119.0, C | - 3 | 110.5, C | - 3 | 113.1, C |
5 | - 3 | 147.1, C | - 3 | 145.7, C | - 3 | 141.4, C |
6 | 9.85, s | 186.8, CH | - 3 | – 2 | 7.95, s | 138.0, CH |
7 | 3.74, s | 35.7, CH3 | 3.72, s | 35.8, CH3 | 3.73, s | 35.5, CH3 |
8 | 2.38, s | 12.4, CH3 | 2.35, s | – 2 | 2.35, s | 13.0, CH3 |
9 | 2.51, s | 9.7, CH3 | 2.50, s | 11.5, CH3 | 2.45, s | 9.9, CH3 |
N′-CHO | - 3 | - 3 | - 3 | - 3 | 8.69, s | 166.1, CH |
N′-CH3 | - 3 | - 3 | - 3 | - 3 | 3.29, s | 26.4, CH3 |
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Mokhlesi, A.; Hartmann, R.; Kurtán, T.; Weber, H.; Lin, W.; Chaidir, C.; Müller, W.E.G.; Daletos, G.; Proksch, P. New 2-Methoxy Acetylenic Acids and Pyrazole Alkaloids from the Marine Sponge Cinachyrella sp. Mar. Drugs 2017, 15, 356. https://doi.org/10.3390/md15110356
Mokhlesi A, Hartmann R, Kurtán T, Weber H, Lin W, Chaidir C, Müller WEG, Daletos G, Proksch P. New 2-Methoxy Acetylenic Acids and Pyrazole Alkaloids from the Marine Sponge Cinachyrella sp. Marine Drugs. 2017; 15(11):356. https://doi.org/10.3390/md15110356
Chicago/Turabian StyleMokhlesi, Amin, Rudolf Hartmann, Tibor Kurtán, Horst Weber, Wenhan Lin, Chaidir Chaidir, Werner E. G. Müller, Georgios Daletos, and Peter Proksch. 2017. "New 2-Methoxy Acetylenic Acids and Pyrazole Alkaloids from the Marine Sponge Cinachyrella sp." Marine Drugs 15, no. 11: 356. https://doi.org/10.3390/md15110356
APA StyleMokhlesi, A., Hartmann, R., Kurtán, T., Weber, H., Lin, W., Chaidir, C., Müller, W. E. G., Daletos, G., & Proksch, P. (2017). New 2-Methoxy Acetylenic Acids and Pyrazole Alkaloids from the Marine Sponge Cinachyrella sp. Marine Drugs, 15(11), 356. https://doi.org/10.3390/md15110356