| Literature DB >> 23648552 |
Coralie Audoin1, Dominique Bonhomme, Julijana Ivanisevic, Mercedes de la Cruz, Bastien Cautain, Maria Cândida Monteiro, Fernando Reyes, Laurent Rios, Thierry Perez, Olivier P Thomas.
Abstract
The chemical investigation of the recently described Mediterranean Homoscleromorpha sponge Oscarella balibaloi revealed an original family of five closely related glucosylated sesterterpenes 1-4, named balibalosides. Their structure elucidation was mainly inferred from NMR and HRMS data analyses. Balibalosides differ by the pattern of acetyl substitutions on the three sugar residues linked to the same aglycone sesterterpenoid core. From a biosynthetic perspective, these compounds may represent intermediates in the pathways leading to more complex sesterterpenes frequently found in Dictyoceratida, a sponge Order belonging to Demospongiae, a clade which is phylogenetically distinct from the Homoscleromorpha. While steroid and triterpenoid saponins were already well known from marine sponges, balibalosides are the first examples of glycosilated sesterterpenes.Entities:
Mesh:
Substances:
Year: 2013 PMID: 23648552 PMCID: PMC3707155 DOI: 10.3390/md11051477
Source DB: PubMed Journal: Mar Drugs ISSN: 1660-3397 Impact factor: 5.118
Figure 1Chemical structures of balibalosides 1–4.
NMR data (500 MHz, CD3OD) for the sugar residues of balibalosides 1–4.
| Residue | Position | 1 | 2 | 3 | 4 | ||||
|---|---|---|---|---|---|---|---|---|---|
| δC | δH, mult. ( | δC | δH, mult. ( | δC | δH, mult. ( | δC | δH, mult. ( | ||
| Glu-1 | 1′ | 101.3 | 4.36, d (7.3) | 101.3 | 4.35, d (7.6) | 101.3 | 4.36, d (8.0) | 101.3 | 4.34, d (8.0) |
| 2′ | 83.8 | 3.37, dd (9.1, 7.3) | 84.9 | 3.34, m | 83.9 | 3.36, m | 85.0 | 3.30, m | |
| 3′ | 77.9 | 3.64, t (9.1) | 77.7 | 3.64, t (9.1) | 77.8 | 3.56, t (9.0) | 77.5 | 3.57, t (9.0) | |
| 4′ | 70.8 | 3.35, m | 70.9 | 3.36, m | 70.9 | 3.36, m | 70.9 | 3.35, m | |
| 5′ | 77.9 | 3.24, m | 77.9 | 3.24, ddd (9.3, 5.4, 2.3) | 78.1 | 3.24, m | 77.8 | 3.24, m | |
| 6′ | 62.7 | 3.86, dd (11.8, 2.1) | 62.7 | 3.86, dd (11.9, 2.3) | 62.7 | 3.86, dd (11.9, 2.3) | 62.5 | 3.85, dd (11.9, 2.3) | |
| 3.63, dd (11.8, 5.6) | 3.69, dd (11.9, 5.6) | 3.69, dd (11.9, 5.6) | 3.68, dd (11.9, 5.6) | ||||||
| Glu-2 | 1″ | 103.8 | 4.71, d (7.9) | 104.2 | 4.65, d (7.8) | 103.6 | 4.69, d (7.7) | 103.8 | 4.62, d (8.0) |
| 2″ | 85.2 | 3.40, dd (9.1, 7.9) | 84.8 | 3.44, dd (9.1, 7.8) | 84.8 | 3.39, dd (9.0, 7.7) | 84.6 | 3.41, dd (9.1, 7.8) | |
| 3″ | 77.8 | 3.56, t (9.1) | 77.7 | 3.55, t (9.1) | 77.8 | 3.56, t (9.0) | 77.5 | 3.55, t (9.1) | |
| 4″ | 71.4 | 3.29, dd (9.1, 7.4) | 71.4 | 3.30, m | 71.6 | 3.30, m | 71.2 | 3.30, m | |
| 5″ | 77.9 | 3.24, m | 75.1 | 3.41, m | 78.0 | 3.24, m | 75.0 | 3.41, m | |
| 6″ | 63.0 | 3.80, dd (12.0, 2.3) | 64.7 | 4.31, br d (12.0) | 63.0 | 3.80, dd (12.0, 2.3) | 64.7 | 4.31, br d (12.0) | |
| 3.63, dd (12.0, 6.0) | 4.20, dd (12.0, 5.0) | 3.63, dd (12.0, 6.0) | 4.19, dd (12.0, 5.0) | ||||||
| 6″- | 20.7 | 2.04, s | 20.7 | 2.04, s | |||||
| 170.5 | 170.5 | ||||||||
| Glu-3 | 1″′ | 106.2 | 4.60, d (7.7) | 106.0 | 4.63, d (8.0) | 105.8 | 4.63,d (8.0) | 105.8 | 4.66, d (8.0) |
| 2″′ | 76.3 | 3.27, dd (9.1, 7.7) | 76.2 | 3.27, m | 76.0 | 3.28, m | 76.0 | 3.28, m | |
| 3″′ | 77.6 | 3.38, dd (9.0, 7.8) | 77.5 | 3.38, m | 77.7 | 3.38, t (9.0) | 77.6 | 3.38, t (9.0) | |
| 4″′ | 71.0 | 3.33, m | 70.9 | 3.35, m | 71.0 | 3.35, m | 70.9 | 3.35, m | |
| 5″′ | 78.9 | 3.34, m | 78.9 | 3.35, m | 76.1 | 3.52, ddd (9.0, 5.0, 2.0) | 76.0 | 3.52, ddd (9.0, 5.0, 2.0) | |
| 6″′ | 62.4 | 3.91, dd (12.0, 1.6) | 62.4 | 3.91, dd (12.0, 1.8) | 64.3 | 4.47, dd (12.0, 2.0) | 64.3 | 4.47, dd (12.0, 2.0) | |
| 3.73, dd (12.0, 6.0) | 3.73, dd (12.0, 5.0) | 4.22, dd (12.0, 5.0) | 4.22, dd (12.0, 5.0) | ||||||
| 2″′- | |||||||||
| 6″′- | 21.0 | 2.10, s | 21.0 | 2.10, s | |||||
| 170.5 | 170.5 | ||||||||
NMR data (500 MHz, CD3OD) for the aglycone of balibalosides 1–4.
| Position | δC, mult. | δH, mult. ( |
|---|---|---|
| 1 | 177.0, C | |
| 2 | 115.7, CH | 5.87, quint (1.6) |
| 3 | 174.2, C | |
| 4 | 29.5, CH2 | 2.52, br t (7.2) |
| 5 | 26.7, CH2 | 2.34, q (7.2) |
| 6 | 123.9, CH | 5.17, br t (7.2) |
| 7 | 138.1, C | |
| 8 | 40.7, CH2 | 2.04, br t (7.4) |
| 9 | 27.5, CH2 | 2.12, m |
| 10 | 125.7, CH | 5.12, t (7.0) |
| 11 | 135.8, C | |
| 12 | 40.9, CH2 | 2.02, m |
| 13 | 27.2, CH2 | 2.19, br q (6.8) |
| 14 | 130.8, CH | 5.39, t (7.2) |
| 15 | 136.5, C | |
| 16 | 35.9, CH2 | 2.13, m |
| 17 | 27.8, CH2 | 2.12, m |
| 18 | 125.7, CH | 5.12, t (7.0) |
| 19 | 132.2, C | |
| 20 | 26.0, CH3 | 1.69, s |
| 21 | 18.6, CH3 | 1.63, s |
| 22 | 67.0, CH2 | 4.32, s a |
| 23 | 16.2, CH3 | 1.62, s |
| 24 | 16.2, CH3 | 1.65, s |
| 25 | 75.0, CH2 | 4.85 b |
a Becomes a AB system at 4.31 (d, 11.8) and 4.33 (d, 11.8) for balibalosides 2–4; b Overlapped with H2O.
Figure 2Key COSY and HMBC correlations for the aglycone of 1–4.
Scheme 1Biosynthetic considerations linking balibalosides to luffarins.