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Mar Drugs
2022 May 30;206:. doi: 10.3390/md20060369.
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Structures and Biologic Activity of Chitonoidosides I, J, K, K1 and L-Triterpene Di-, Tri- and Tetrasulfated Hexaosides from the Sea Cucumber Psolus chitonoides.
Silchenko AS
,
Avilov SA
,
Andrijaschenko PV
,
Popov RS
,
Chingizova EA
,
Dmitrenok PS
,
Kalinovsky AI
,
Rasin AB
,
Kalinin VI
.
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Five new triterpene di-, tri- and tetrasulfated hexaosides (chitonoidosides I (1), J (2), K (3), K1 (4) and L (5)) were isolated from the Far-Eastern sea cucumber Psolus chitonoides, collected near Bering Island (Commander Islands) from a depth of 100-150 m. The structural variability of the glycosides concerned both the aglycones (with 7(8)- or 9(11)-double bonds) and carbohydrate chains differing from each other by the third sugar residue (Xyl or sulfated by C-6 Glc) and/or by the fourth-terminal in the bottom semi-chain-residue (Glc or sulfated by C-6 MeGlc) as well as by the positions of a sulfate group at C-4 or C-6 in the sixth-terminal in the upper semi-chain-residue (MeGlc). Hemolytic activities of these compounds 1-5 against human erythrocytes as well as cytotoxicity against human cancer cell lines, HeLa, DLD-1 and HL-60, were studied. The hexaosides, chitonoidosides K (3) and L (5) with four sulfate groups, were the most active against tumor cells in all the tests. Noticeably, the sulfate group at C-4 of MeGlc6 did not decrease the membranolytic effect of 5 as compared with 3, having the sulfate group at C-6 of MeGlc6. Erythrocytes were, as usual, more sensitive to the action of the studied glycosides than cancer cells, although the sensitivity of leukemia promyeloblast HL-60 cells was higher than that of other tumor cells. The glycosides 1 and 2 demonstrated some weaker action in relation to DLD-1 cells than against other tumor cell lines. Chitonoidoside K1 (4) with a hydroxyl at C 25 of the aglycone was not active in all the tests. The metabolic network formed by the carbohydrate chains of all the glycosides isolated from P. chitonoides as well as the aglycones biosynthetic transformations during their biosynthesis are discussed and illustrated with schemes.
Figure 1. Chemical structures of glycosides isolated from Psolus chitonoides: 1âchitonoidoside I; 2âchitonoidoside J; 3âchitonoidoside K; 4âchitonoidoside K1; and 5âchitonoidoside L.
Figure 2. Combinatorial library for the glycosides of P. chitonoides.
Figure 3. Biosynthetic network of carbohydrate chains of the glycosides isolated from P. chitonoides. Red indicates main steps of transformations and blue indicates the alternative path of biosynthetic modifications.
Figure 4. Biosynthesis of the aglycones of the glycosides isolated from P. chitonoides.
Byrne,
Molecular taxonomy, phylogeny and evolution in the family Stichopodidae (Aspidochirotida: Holothuroidea) based on COI and 16S mitochondrial DNA.
2010, Pubmed,
Echinobase
Byrne,
Molecular taxonomy, phylogeny and evolution in the family Stichopodidae (Aspidochirotida: Holothuroidea) based on COI and 16S mitochondrial DNA.
2010,
Pubmed
,
Echinobase
Claereboudt,
Triterpenoids in Echinoderms: Fundamental Differences in Diversity and Biosynthetic Pathways.
2019,
Pubmed
,
Echinobase
Honey-Escandón,
Biological and taxonomic perspective of triterpenoid glycosides of sea cucumbers of the family Holothuriidae (Echinodermata, Holothuroidea).
2015,
Pubmed
,
Echinobase
Kalinin,
Hemolytic activities of triterpene glycosides from the holothurian order Dendrochirotida: some trends in the evolution of this group of toxins.
1996,
Pubmed
,
Echinobase
Kalinin,
Triterpene glycosides of sea cucumbers (Holothuroidea, Echinodermata) as taxonomic markers.
2015,
Pubmed
,
Echinobase
Kalinin,
Non-holostane aglycones of sea cucumber triterpene glycosides. Structure, biosynthesis, evolution.
2019,
Pubmed
,
Echinobase
Kamyab,
Chemical Defense Mechanisms and Ecological Implications of Indo-Pacific Holothurians.
2020,
Pubmed
,
Echinobase
Kim,
Triterpene glycosides from sea cucumbers and their biological activities.
2012,
Pubmed
,
Echinobase
Li,
Sea cucumber genome provides insights into saponin biosynthesis and aestivation regulation.
2018,
Pubmed
,
Echinobase
Maltsev,
Triterpene glycosides from sea cucumber Stichopus japonicus Selenka.
1984,
Pubmed
,
Echinobase
Mondol,
Sea Cucumber Glycosides: Chemical Structures, Producing Species and Important Biological Properties.
2017,
Pubmed
,
Echinobase
Park,
Relationships between chemical structures and functions of triterpene glycosides isolated from sea cucumbers.
2014,
Pubmed
,
Echinobase
Silchenko,
Structures and Bioactivities of Psolusosides B1, B2, J, K, L, M, N, O, P, and Q from the Sea Cucumber Psolus fabricii. The First Finding of Tetrasulfated Marine Low Molecular Weight Metabolites.
2019,
Pubmed
,
Echinobase
Silchenko,
Unusual Structures and Cytotoxicities of Chitonoidosides A, A1, B, C, D, and E, Six Triterpene Glycosides from the Far Eastern Sea Cucumber Psolus chitonoides.
2021,
Pubmed
,
Echinobase
Silchenko,
Triterpene Glycosides from the Far Eastern Sea Cucumber Psolus chitonoides: Chemical Structures and Cytotoxicities of Chitonoidosides E1, F, G, and H.
2021,
Pubmed
,
Echinobase
Silchenko,
Colochirosides A₁, A₂, A₃, and D, Four Novel Sulfated Triterpene Glycosides from the Sea Cucumber Colochirus robustus (Cucumariidae, Dendrochirotida).
2016,
Pubmed
,
Echinobase
Silchenko,
Structures and Bioactivities of Six New Triterpene Glycosides, Psolusosides E, F, G, H, H1, and I and the Corrected Structure of Psolusoside B from the Sea Cucumber Psolus fabricii.
2019,
Pubmed
,
Echinobase
Silchenko,
Triterpene Glycosides from the Far Eastern Sea Cucumber Thyonidium (=Duasmodactyla) kurilensis (Levin): The Structures, Cytotoxicities, and Biogenesis of Kurilosides A3, D1, G, H, I, I1, J, K, and K1.
2021,
Pubmed
,
Echinobase
Stonik,
Toxins from sea cucumbers (holothuroids): chemical structures, properties, taxonomic distribution, biosynthesis and evolution.
1999,
Pubmed
,
Echinobase
Zelepuga,
Structure-Activity Relationships of Holothuroid's Triterpene Glycosides and Some In Silico Insights Obtained by Molecular Dynamics Study on the Mechanisms of Their Membranolytic Action.
2021,
Pubmed
,
Echinobase