| Literature DB >> 21747751 |
Simona De Marino1, Carmen Festa1, Maria Valeria D'Auria1, Thierry Cresteil2, Cecile Debitus3, Angela Zampella1.
Abstract
In our ongoing search for new pharmacologically active leads from Solomon organisms, we have examined the sponge Theonella swinhoei. Herein we report the isolation and structure elucidation of swinholide A (1) and one new macrolide, swinholide J (2). Swinholide J is an unprecedented asymmetric 44-membered dilactone with an epoxide functionality in half of the molecule. The structural determination was based on extensive interpretation of high-field NMR spectra and HRESIMS data. Swinholide J displayed potent in vitro cytotoxicity against KB cells (human nasopharynx cancer) with an IC(50) value of 6 nM.Entities:
Keywords: Theonella swinhoei; marine cytotoxin; swinholide J
Mesh:
Substances:
Year: 2011 PMID: 21747751 PMCID: PMC3131564 DOI: 10.3390/md9061133
Source DB: PubMed Journal: Mar Drugs ISSN: 1660-3397 Impact factor: 6.085
Figure 1Swinholides A (1) and J (2) from Theonella swinhoei.
NMR data (700 MHz, CD3OD) for swinholides A (1) and J (2) (δ in ppm, J in Hz).
| 1/1′ | C | - | 170.6 | - | 170.2/168.7 | |
| 2/2′ | CH | 5.84 d (15.7) | 115.6 | 5.90 d (15.6)/6.14 d (15.7) | 115.9/122.2 | C1, C4 |
| C1′, C4′ | ||||||
| 3/3′ | CH | 7.43 d (15.7) | 152.3 | 7.46 d (15.6)/6.82 d (15.7) | 152.0/152.4 | C1, C5 |
| C1′ | ||||||
| 4/4′ | C | - | 135.5 | - | 135.5/59.7 | |
| 4/4′-Me | CH3 | 1.77 s | 12.4 | 1.85 s/1.42 s | 12.7/15.5 | C3, C4, C5 |
| C3′, C4′, C5′ | ||||||
| 5/5′ | CH | 6.14 t (7.3) | 140.5 | 6.16 t (7.2)/3.22 dd (4.3, 7.4) | 140.6/64.6 | C3, 4-Me |
| 6/6′ | CH2 | 2.40 t (6.9) | 38.8 | 2.44 m/1.81 m, 1.63 m | 38.7/37.9 | C4, C5, C7, C8 |
| 7/7′ | CH | 4.02 m | 68.1 | 3.99 ovl/4.12 m | 68.2/66.5 | |
| 8/8′ | CH2 | 1.28 m | 41.0 | 1.87 m, 1.37 m/ | 41.8/41.6 | |
| 1.76 m | 1.78 m, 1.37 m | |||||
| 9/9′ | CH | 4.47 br d (10.5) | 70.5 | 4.48 br d (10.2) | 70.4 | |
| 10/10′ | CH | 5.65 dd (1.8, 10.5) | 130.9 | 5.67 br d (10.3) | 130.8 | |
| 11/11′ | CH | 5.81 m | 124.9 | 5.83 m | 124.8 | |
| 12/12′ | CH2 | 1.94 m | 32.2 | 1.96 m | 32.2 | |
| 13/13′ | CH | 3.49 m | 65.3 | 3.54 m | 65.4 | |
| 14/14′ | CH2 | 1.58 m | 37.2 | 1.58 m | 36.9 | |
| 1.77 m | 1.82 m | |||||
| 15/15′ | CH | 3.76 m | 78.2 | 3.76 m/3.83 m | 78.4/77.9 | |
| 15/15′-OMe | CH3 | 3.32 s | 56.7 | 3.34 s/3.35 s | 56.9/57.2 | C15/C15′ |
| 16/16′ | CH | 1.52 m | 43.8 | 1.55 m | 43.3 | |
| 16/16′-Me | CH3 | 0.83 d (6.7) | 8.8 | 0.83 d (7.0)/0.84 d (7.0) | 9.2 | C15, C16, C17 |
| C15′, C16′, C17′ | ||||||
| 17/17′ | CH | 3.61 m | 73.2 | 3.60 m | 73.2 | |
| 18/18′ | CH2 | 1.63 m | 39.0 | 1.61 m | 39.2 | |
| 1.74 m | 1.75 m | |||||
| 19/19′ | CH | 3.97 ovl | 70.1 | 3.97 ovl/3.88 m | 70.0/70.1 | |
| 20/20′ | CH | 1.94 m | 39.4 | 1.94 m | 39.4 | |
| 20/20′-Me | CH3 | 0.91 d (7.0) | 8.9 | 0.90 d (7.1)/0.91 d (7.1) | 9.1 | |
| 21/21′ | CH | 5.46 d (10.5) | 75.6 | 5.45 t (10.3)/5.46 t (10.3) | 75.7/76.3 | |
| 22/22′ | CH | 1.98 m | 37.9 | 1.97 m | 38.0 | |
| 22/22′-Me | CH3 | 0.94 d (6.9) | 9.6 | 0.92 d (7.0)/0.93 d (7.0) | 9.7 | C21, C22, C23 |
| C21′, C22′, C23′ | ||||||
| 23/23′ | CH | 3.11 dd (1.8, 9.5) | 77.2 | 3.10 m | 77.3 | |
| 24/24′ | CH | 1.70 m | 34.4 | 1.70 m | 34.5 | |
| 24/24′-Me | CH3 | 0.98 d (6.7) | 17.7 | 0.97 d (6.7)/0.98 d (6.7) | 17.9 | C23, C24, C25 |
| C23′, C24′, C25′ | ||||||
| 25/25′ | CH2 | 1.24 m | 25.1 | 1.23 m, 1.41 m | 25.1 | |
| 1.42 m | ||||||
| 26/26′ | CH2 | 1.27 m | 29.7 | 1.28 m, 1.94 m | 29.8 | |
| 1.94 m | ||||||
| 27/27′ | CH | 3.99 ovl | 72.7 | 3.98 ovl | 72.8 | |
| 28/28′ | CH2 | 1.52 m | 35.8 | 1.52 m | 35.8 | |
| 1.87 br d (12.8) | 1.87 br d (12.5) | |||||
| 29/29′ | CH | 3.61 m | 74.2 | 3.61 m | 74.3 | C29-OMe |
| C29′-OMe | ||||||
| 29/29′-OMe | CH3 | 3.34 s | 55.3 | 3.34 s | 55.3 | C29 |
| C29′ | ||||||
| 30/30′ | CH2 | 1.09 dd (10.4, 12.6) | 39.7 | 1.09 dd (10.4, 12.6) | 39.7 | |
| 2.01 br d (12.6) | 2.02 br d (12.6) | |||||
| 31/31′ | CH | 3.74 m | 65.7 | 3.74 m | 65.8 | |
| 31/31′-Me | CH3 | 1.19 d (6.2) | 21.8 | 1.19 d (6.2) | 21.8 | |
Data from COSY, HSQC, and HMBC experiments;
HMBC correlations, optimized for 6 Hz, are from proton(s) stated to the indicated carbon.
Figure 2COSY/TOCSY connectivities (bold bonds), HMBC (black arrows) and ROE (red arrows) correlations for C-1/C-7 and C-1′/C-7′ partial structures of swinholide J (2).