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First Apocarotenoids Profiling of Four Microalgae Strains

Both enzymatic or oxidative carotenoids cleavages can often occur in nature and produce a wide range of bioactive apocarotenoids. Considering that no detailed information is available in the literature regarding the occurrence of apocarotenoids in microalgae species, the aim of this study was to stu...

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Autores principales: Zoccali, Mariosimone, Giuffrida, Daniele, Salafia, Fabio, Socaciu, Carmen, Skjånes, Kari, Dugo, Paola, Mondello, Luigi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6680960/
https://www.ncbi.nlm.nih.gov/pubmed/31284598
http://dx.doi.org/10.3390/antiox8070209
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author Zoccali, Mariosimone
Giuffrida, Daniele
Salafia, Fabio
Socaciu, Carmen
Skjånes, Kari
Dugo, Paola
Mondello, Luigi
author_facet Zoccali, Mariosimone
Giuffrida, Daniele
Salafia, Fabio
Socaciu, Carmen
Skjånes, Kari
Dugo, Paola
Mondello, Luigi
author_sort Zoccali, Mariosimone
collection PubMed
description Both enzymatic or oxidative carotenoids cleavages can often occur in nature and produce a wide range of bioactive apocarotenoids. Considering that no detailed information is available in the literature regarding the occurrence of apocarotenoids in microalgae species, the aim of this study was to study the extraction and characterization of apocarotenoids in four different microalgae strains: Chlamydomonas sp. CCMP 2294, Tetraselmis chuii SAG 8-6, Nannochloropsis gaditana CCMP 526, and Chlorella sorokiniana NIVA-CHL 176. This was done for the first time using an online method coupling supercritical fluid extraction and supercritical fluid chromatography tandem mass spectrometry. A total of 29 different apocarotenoids, including various apocarotenoid fatty acid esters, were detected: apo-12’-zeaxanthinal, β-apo-12’-carotenal, apo-12-luteinal, and apo-12’-violaxanthal. These were detected in all the investigated strains together with the two apocarotenoid esters, apo-10’-zeaxanthinal-C4:0 and apo-8’-zeaxanthinal-C8:0. The overall extraction and detection time for the apocarotenoids was less than 10 min, including apocarotenoids esters, with an overall analysis time of less than 20 min. Moreover, preliminary quantitative data showed that the β-apo-8’-carotenal content was around 0.8% and 2.4% of the parent carotenoid, in the C. sorokiniana and T. chuii strains, respectively. This methodology could be applied as a selective and efficient method for the apocarotenoids detection.
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spelling pubmed-66809602019-08-09 First Apocarotenoids Profiling of Four Microalgae Strains Zoccali, Mariosimone Giuffrida, Daniele Salafia, Fabio Socaciu, Carmen Skjånes, Kari Dugo, Paola Mondello, Luigi Antioxidants (Basel) Article Both enzymatic or oxidative carotenoids cleavages can often occur in nature and produce a wide range of bioactive apocarotenoids. Considering that no detailed information is available in the literature regarding the occurrence of apocarotenoids in microalgae species, the aim of this study was to study the extraction and characterization of apocarotenoids in four different microalgae strains: Chlamydomonas sp. CCMP 2294, Tetraselmis chuii SAG 8-6, Nannochloropsis gaditana CCMP 526, and Chlorella sorokiniana NIVA-CHL 176. This was done for the first time using an online method coupling supercritical fluid extraction and supercritical fluid chromatography tandem mass spectrometry. A total of 29 different apocarotenoids, including various apocarotenoid fatty acid esters, were detected: apo-12’-zeaxanthinal, β-apo-12’-carotenal, apo-12-luteinal, and apo-12’-violaxanthal. These were detected in all the investigated strains together with the two apocarotenoid esters, apo-10’-zeaxanthinal-C4:0 and apo-8’-zeaxanthinal-C8:0. The overall extraction and detection time for the apocarotenoids was less than 10 min, including apocarotenoids esters, with an overall analysis time of less than 20 min. Moreover, preliminary quantitative data showed that the β-apo-8’-carotenal content was around 0.8% and 2.4% of the parent carotenoid, in the C. sorokiniana and T. chuii strains, respectively. This methodology could be applied as a selective and efficient method for the apocarotenoids detection. MDPI 2019-07-06 /pmc/articles/PMC6680960/ /pubmed/31284598 http://dx.doi.org/10.3390/antiox8070209 Text en © 2019 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zoccali, Mariosimone
Giuffrida, Daniele
Salafia, Fabio
Socaciu, Carmen
Skjånes, Kari
Dugo, Paola
Mondello, Luigi
First Apocarotenoids Profiling of Four Microalgae Strains
title First Apocarotenoids Profiling of Four Microalgae Strains
title_full First Apocarotenoids Profiling of Four Microalgae Strains
title_fullStr First Apocarotenoids Profiling of Four Microalgae Strains
title_full_unstemmed First Apocarotenoids Profiling of Four Microalgae Strains
title_short First Apocarotenoids Profiling of Four Microalgae Strains
title_sort first apocarotenoids profiling of four microalgae strains
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6680960/
https://www.ncbi.nlm.nih.gov/pubmed/31284598
http://dx.doi.org/10.3390/antiox8070209
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