| Literature DB >> 25110919 |
Yadollah Bahrami1, Wei Zhang2, Tim Chataway3, Chris Franco4.
Abstract
Sea cucumbers are prolific producers of a wide range of bioactive compounds. This study aimed to purify and characterize one class of compound, the saponins, from the viscera of the Australian sea cucumber Holothuria lessoni. The saponins were obtained by ethanolic extraction of the viscera and enriched by a liquid-liquid partition process and adsorption column chromatography. A high performance centrifugal partition chromatography (HPCPC) was applied to the saponin-enriched mixture to obtain saponins with high purity. The resultant purified saponins were profiled using MALDI-MS/MS and ESI-MS/MS which revealed the structure of isomeric saponins to contain multiple aglycones and/or sugar residues. We have elucidated the structure of five novel saponins, Holothurins D/E and Holothurinosides X/Y/Z, along with seven reported triterpene glycosides, including sulfated and non-sulfated saponins containing a range of aglycones and sugar moieties, from the viscera of H. lessoni. The abundance of novel compounds from this species holds promise for biotechnological applications.Entities:
Mesh:
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Year: 2014 PMID: 25110919 PMCID: PMC4145325 DOI: 10.3390/md12084439
Source DB: PubMed Journal: Mar Drugs ISSN: 1660-3397 Impact factor: 5.118
Figure 1(+) Electrospray ionization- mass spectrometry (ESI-MS) spectrum of saponins purified by HPCPC from Fraction # 18 of the extract from the viscera of H. lessoni.
Summary of saponins identified from Fraction 18 of the viscera of H. lessoni by MALDI-MS/MS and ESI-MS/MS. This table includes the 14 novel identified compounds (N) along with the 27 published compounds (P).
| [M + Na]+
| MW | Formula | Compound’s Name | Novel (N)/ Published(P) | Sea Cucumber Species | References |
|---|---|---|---|---|---|---|
| 1071.6 | 1048 | C47H93NaO21S | Unidentified | N | [ | |
| 1083.3 | 1060 | C58H64O25 | Unidentified | N | [ | |
| 1087.6 | 1064 | C47H93NaO22S | Unidentified | N | [ | |
| 1123.5 | 1100 | C54H84O23 | Unidentified | N | [ | |
| 1125.5 | 1102 | C54H86O23 | Holothurinoside C | P | [ | |
| Holothurinoside C1 | P | |||||
| 1127.6 | 1104 | C54H88O23 | Unidentified | N | - | |
| Unidentified | N | - | ||||
| Unidentified | N | - | ||||
| 1141.5 | 1118 | C54H86O24 | Desholothurin A | P | [ | |
| (Nobiliside 2a), | P | |||||
| Desholothurin A1 (Arguside E) | P | |||||
| 1149.2 | 1126 | a * | Holothurinoside T | P | [ | |
| 1157.5 | 1134 | C54H109O25 | Holothurinoside J1 | P | [ | |
| C49H91NaO25S | Unidentified | N | - | |||
| 1169.5 | 1170 | C55H87NaO23S | Unidentified | N | - | |
| 1227.4 | 1204 | C54H85NaO26S | Fuscocinerosides B/C, | P | [ | |
| P | ||||||
| N | ||||||
| 1243.5 | 1220 | C54H85NaO27S | Holothurin A | P | [ | |
| 1259.5 | 1236 | C54H85NaO28S | Holothurin A3 | P | [ | |
| Unidentified | N | - | ||||
| 1287.6 | 1264 | C60H96O28 | Holothurinoside E, | P | [ | |
| Holothurinoside E1 | P | [ | ||||
| Holothurinoside O | P | [ | ||||
| Holothurinoside P | P | [ | ||||
| 17-dehydroxyholothurinoside A | P | [ | ||||
| 1301.6 | 1278 | C61H98O28 | Holothurinoside M | P | [ | |
| C60H94O29 | Unidentified | N | - | |||
| 1303.6 | 1280 | C60H96O29 | Holothurinoside A | P | [ | |
| Holothurinoside A1 | P | [ | ||||
| Holothurinoside Q | P | [ | ||||
| Holothurinoside S | P | [ | ||||
| Holothurinoside R | P | [ | ||||
| Holothurinoside R1 | P | [ | ||||
| 1317.6 | 1294 | C61H98O29 | Holothurinoside N | P | [ | |
| 1475.6 | 1452 | C65H96O36 | Unidentified | N | - | |
| 1477.7 | 1454 | C61H114O38 | Unidentified | N | - | |
| 1479.7 | 1456 | C67H108O34 | Holothurinoside I | P | [ | |
| 1495.7 | 1472 | C61H116O39 | Holothurinoside K1 | P | [ | |
| C72H112O31 | Unidentified | N | - |
a *: The composition was not measured through ESI analysis.
Figure 2Positive tandem ESI spectrum analysis of saponins detected at m/z 1127.6, Fraction 17; (A) and Fraction 18; (B) Full and dotted arrows show the two main feasible fragmentation pathways. The figures indicate the collision-induced fragmentation of parent ions at m/z 1127.6. The consecutive losses of the aglycone (Agl), xylose (Xyl), quinovose (Qui) and 3-O-methylglucose (MeGlc) residues affords product ions detected at m/z 657.2, 507.2, 361.1 and 185.0, respectively, which indicate the structure of a novel saponin. The predominant peak (A and B) at m/z 493.2 corresponds to either the diagnostic sugar residue or the aglycone moiety. The major abundant peak (A and B) at m/z 507 also corresponds to either the key sugar residue or the aglycone moiety.
Figure 3Schematic fragmentation patterns of the ion detected at m/z 1127.6.
Key diagnostic ions in the MS/MS of the holothurians saponins.
| Diagnostic Ions in CID Spectra of [M + Na]+ | ||||
|---|---|---|---|---|
| 493 | 507 | 523 | 657 | |
| Chemical signatures | MeGlc-Glc-Xyl + Na | MeGlc-Glc-Qui + Na | MeGlc-Glc-Glc +Na | MeGlc-Glc-Qui-Xyl + Na |
Figure 4The schematic diagram of the proposed isomeric structures of ion at m/z 1127.6.
Figure 5(+) ion mode ESI-MS/MS spectrum of sulfated saponins detected at 1227.4. Full and dotted arrows show the three main feasible fragmentation pathways. The consecutive losses of NaHSO4, Agl, Xyl, MeGlc and Qui residues affords product ions detected at m/z 1107.5, 639.0, 507.0, 331.1 and 185.0, respectively.
Figure 6Schematic fragmentation patterns of the ion detected at m/z 1227.4.
Figure 7(+) ion mode ESI-MS/MS spectrum of saponins detected at m/z 1259.5 from Fraction 22. This spectrum shows the presence of two different aglycones indicating the presence of isomeric saponins. The consecutive losses of NaHSO4, Agl, Xyl, Qui and MeGlc followed by Glc residue affords product ions detected at m/z 1139.5, 639.2, 507.2, 361.1 and 185.0, respectively, which indicate the structure of Holothurin A3. Full and dotted arrows illustrate the three main possible fragmentation pathways.
Figure 8Schematic fragmentation patterns of the ion detected at m/z 1259.5.
Figure 9A schematic diagram of the proposed isomeric structures of ion at m/z 1259.5.
Figure 10The MALDI mass spectrum of HPCPC Fraction 18 from the viscera of the H. lessoni in the (+) ion mode. A mass range of 1000 to 1500 Da is shown here.
Figure 11Schematic fragmentation patterns of the ion detected at m/z 1243.5, Holothurin A.
Figure 12The structure of identified saponins in the viscera of H. lessoni. Holothurins D/E and Holothurinosides X/Y/Z are the novel compounds described in this paper.