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Phytoceramides from the Marine Sponge Monanchora clathrata: Structural Analysis and Cytoprotective Effects

In our research on sphingolipids from marine invertebrates, a mixture of phytoceramides was isolated from the sponge Monanchora clathrata (Western Australia). Total ceramide, ceramide molecular species (obtained by RP-HPLC, high-performance liquid chromatography on reversed-phase column) and their s...

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Autores principales: Santalova, Elena A., Kuzmich, Alexandra S., Chingizova, Ekaterina A., Menchinskaya, Ekaterina S., Pislyagin, Evgeny A., Dmitrenok, Pavel S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10136155/
https://www.ncbi.nlm.nih.gov/pubmed/37189423
http://dx.doi.org/10.3390/biom13040677
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author Santalova, Elena A.
Kuzmich, Alexandra S.
Chingizova, Ekaterina A.
Menchinskaya, Ekaterina S.
Pislyagin, Evgeny A.
Dmitrenok, Pavel S.
author_facet Santalova, Elena A.
Kuzmich, Alexandra S.
Chingizova, Ekaterina A.
Menchinskaya, Ekaterina S.
Pislyagin, Evgeny A.
Dmitrenok, Pavel S.
author_sort Santalova, Elena A.
collection PubMed
description In our research on sphingolipids from marine invertebrates, a mixture of phytoceramides was isolated from the sponge Monanchora clathrata (Western Australia). Total ceramide, ceramide molecular species (obtained by RP-HPLC, high-performance liquid chromatography on reversed-phase column) and their sphingoid/fatty acid components were analyzed by NMR (nuclear magnetic resonance) spectroscopy and mass spectrometry. Sixteen new (1b, 3a, 3c, 3d, 3f, 3g, 5c, 5d, 5f, 5g, 6b–g) and twelve known (2b, 2e, 2f, 3b, 3e, 4a–c, 4e, 4f, 5b, 5e) compounds were shown to contain phytosphingosine-type backbones i-t17:0 (1), n-t17:0 (2), i-t18:0 (3), n-t18:0 (4), i-t19:0 (5), or ai-t19:0 (6), N-acylated with saturated (2R)-2-hydroxy C(21) (a), C(22) (b), C(23) (c), i-C(23) (d), C(24) (e), C(25) (f), or C(26) (g) acids. The used combination of the instrumental and chemical methods permitted the more detailed investigation of the sponge ceramides than previously reported. It was found that the cytotoxic effect of crambescidin 359 (alkaloid from M. clathrata) and cisplatin decreased after pre-incubation of MDA-MB-231 and HL-60 cells with the investigated phytoceramides. In an in vitro paraquat model of Parkinson’s disease, the phytoceramides decreased the neurodegenerative effect and ROS (reactive oxygen species) formation induced by paraquat in neuroblastoma cells. In general, the preliminary treatment (for 24 or 48 h) of the cells with the phytoceramides of M. clathrata was necessary for their cytoprotective functions, otherwise the additive damaging effect of these sphingolipids and cytotoxic compounds (crambescidin 359, cisplatin or paraquat) was observed.
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spelling pubmed-101361552023-04-28 Phytoceramides from the Marine Sponge Monanchora clathrata: Structural Analysis and Cytoprotective Effects Santalova, Elena A. Kuzmich, Alexandra S. Chingizova, Ekaterina A. Menchinskaya, Ekaterina S. Pislyagin, Evgeny A. Dmitrenok, Pavel S. Biomolecules Article In our research on sphingolipids from marine invertebrates, a mixture of phytoceramides was isolated from the sponge Monanchora clathrata (Western Australia). Total ceramide, ceramide molecular species (obtained by RP-HPLC, high-performance liquid chromatography on reversed-phase column) and their sphingoid/fatty acid components were analyzed by NMR (nuclear magnetic resonance) spectroscopy and mass spectrometry. Sixteen new (1b, 3a, 3c, 3d, 3f, 3g, 5c, 5d, 5f, 5g, 6b–g) and twelve known (2b, 2e, 2f, 3b, 3e, 4a–c, 4e, 4f, 5b, 5e) compounds were shown to contain phytosphingosine-type backbones i-t17:0 (1), n-t17:0 (2), i-t18:0 (3), n-t18:0 (4), i-t19:0 (5), or ai-t19:0 (6), N-acylated with saturated (2R)-2-hydroxy C(21) (a), C(22) (b), C(23) (c), i-C(23) (d), C(24) (e), C(25) (f), or C(26) (g) acids. The used combination of the instrumental and chemical methods permitted the more detailed investigation of the sponge ceramides than previously reported. It was found that the cytotoxic effect of crambescidin 359 (alkaloid from M. clathrata) and cisplatin decreased after pre-incubation of MDA-MB-231 and HL-60 cells with the investigated phytoceramides. In an in vitro paraquat model of Parkinson’s disease, the phytoceramides decreased the neurodegenerative effect and ROS (reactive oxygen species) formation induced by paraquat in neuroblastoma cells. In general, the preliminary treatment (for 24 or 48 h) of the cells with the phytoceramides of M. clathrata was necessary for their cytoprotective functions, otherwise the additive damaging effect of these sphingolipids and cytotoxic compounds (crambescidin 359, cisplatin or paraquat) was observed. MDPI 2023-04-14 /pmc/articles/PMC10136155/ /pubmed/37189423 http://dx.doi.org/10.3390/biom13040677 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Santalova, Elena A.
Kuzmich, Alexandra S.
Chingizova, Ekaterina A.
Menchinskaya, Ekaterina S.
Pislyagin, Evgeny A.
Dmitrenok, Pavel S.
Phytoceramides from the Marine Sponge Monanchora clathrata: Structural Analysis and Cytoprotective Effects
title Phytoceramides from the Marine Sponge Monanchora clathrata: Structural Analysis and Cytoprotective Effects
title_full Phytoceramides from the Marine Sponge Monanchora clathrata: Structural Analysis and Cytoprotective Effects
title_fullStr Phytoceramides from the Marine Sponge Monanchora clathrata: Structural Analysis and Cytoprotective Effects
title_full_unstemmed Phytoceramides from the Marine Sponge Monanchora clathrata: Structural Analysis and Cytoprotective Effects
title_short Phytoceramides from the Marine Sponge Monanchora clathrata: Structural Analysis and Cytoprotective Effects
title_sort phytoceramides from the marine sponge monanchora clathrata: structural analysis and cytoprotective effects
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10136155/
https://www.ncbi.nlm.nih.gov/pubmed/37189423
http://dx.doi.org/10.3390/biom13040677
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