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Enhanced β-carotene and Biomass Production by Induced Mixotrophy in Dunaliella salina across a Combined Strategy of Glycerol, Salinity, and Light

Current mixotrophic culture systems for Dunaliella salina have technical limitations to achieve high growth and productivity. The purpose of this study was to optimize the mixotrophic conditions imposed by glycerol, light, and salinity that lead to the highest biomass and β-carotene yields in D. sal...

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Autores principales: Capa-Robles, Willian, García-Mendoza, Ernesto, Paniagua-Michel, José de Jesús
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8708783/
https://www.ncbi.nlm.nih.gov/pubmed/34940624
http://dx.doi.org/10.3390/metabo11120866
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author Capa-Robles, Willian
García-Mendoza, Ernesto
Paniagua-Michel, José de Jesús
author_facet Capa-Robles, Willian
García-Mendoza, Ernesto
Paniagua-Michel, José de Jesús
author_sort Capa-Robles, Willian
collection PubMed
description Current mixotrophic culture systems for Dunaliella salina have technical limitations to achieve high growth and productivity. The purpose of this study was to optimize the mixotrophic conditions imposed by glycerol, light, and salinity that lead to the highest biomass and β-carotene yields in D. salina. The combination of 12.5 mM glycerol, 3.0 M salinity, and 50 μmol photons m(−2) s(−1) light intensity enabled significant assimilation of glycerol by D. salina and consequently enhanced growth (2.1 × 10(6) cell mL(−1)) and β-carotene accumulation (4.43 pg cell(−1)). The saline and light shock induced the assimilation of glycerol by this microalga. At last stage of growth, the increase in light intensity (300 μmol photons m(−2) s(−1)) caused the β-carotene to reach values higher than 30 pg cell(−1) and tripled the β-carotene values obtained from photoautotrophic cultures using the same light intensity. Increasing the salt concentration from 1.5 to 3.0 M NaCl (non-isosmotic salinity) produced higher growth and microalgal β-carotene than the isosmotic salinity 3.0 M NaCl. The mixotrophic strategy developed in this work is evidenced in the metabolic capability of D. salina to use both photosynthesis and organic carbon, viz., glycerol that leads to higher biomass and β-carotene productivity than that of an either phototrophic or heterotrophic process alone. The findings provide insights into the key role of exogenous glycerol with a strategic combination of salinity and light, which evidenced unknown roles of this polyol other than that in osmoregulation, mainly on the growth, pigment accumulation, and carotenogenesis of D. salina.
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spelling pubmed-87087832021-12-25 Enhanced β-carotene and Biomass Production by Induced Mixotrophy in Dunaliella salina across a Combined Strategy of Glycerol, Salinity, and Light Capa-Robles, Willian García-Mendoza, Ernesto Paniagua-Michel, José de Jesús Metabolites Article Current mixotrophic culture systems for Dunaliella salina have technical limitations to achieve high growth and productivity. The purpose of this study was to optimize the mixotrophic conditions imposed by glycerol, light, and salinity that lead to the highest biomass and β-carotene yields in D. salina. The combination of 12.5 mM glycerol, 3.0 M salinity, and 50 μmol photons m(−2) s(−1) light intensity enabled significant assimilation of glycerol by D. salina and consequently enhanced growth (2.1 × 10(6) cell mL(−1)) and β-carotene accumulation (4.43 pg cell(−1)). The saline and light shock induced the assimilation of glycerol by this microalga. At last stage of growth, the increase in light intensity (300 μmol photons m(−2) s(−1)) caused the β-carotene to reach values higher than 30 pg cell(−1) and tripled the β-carotene values obtained from photoautotrophic cultures using the same light intensity. Increasing the salt concentration from 1.5 to 3.0 M NaCl (non-isosmotic salinity) produced higher growth and microalgal β-carotene than the isosmotic salinity 3.0 M NaCl. The mixotrophic strategy developed in this work is evidenced in the metabolic capability of D. salina to use both photosynthesis and organic carbon, viz., glycerol that leads to higher biomass and β-carotene productivity than that of an either phototrophic or heterotrophic process alone. The findings provide insights into the key role of exogenous glycerol with a strategic combination of salinity and light, which evidenced unknown roles of this polyol other than that in osmoregulation, mainly on the growth, pigment accumulation, and carotenogenesis of D. salina. MDPI 2021-12-13 /pmc/articles/PMC8708783/ /pubmed/34940624 http://dx.doi.org/10.3390/metabo11120866 Text en © 2021 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
Capa-Robles, Willian
García-Mendoza, Ernesto
Paniagua-Michel, José de Jesús
Enhanced β-carotene and Biomass Production by Induced Mixotrophy in Dunaliella salina across a Combined Strategy of Glycerol, Salinity, and Light
title Enhanced β-carotene and Biomass Production by Induced Mixotrophy in Dunaliella salina across a Combined Strategy of Glycerol, Salinity, and Light
title_full Enhanced β-carotene and Biomass Production by Induced Mixotrophy in Dunaliella salina across a Combined Strategy of Glycerol, Salinity, and Light
title_fullStr Enhanced β-carotene and Biomass Production by Induced Mixotrophy in Dunaliella salina across a Combined Strategy of Glycerol, Salinity, and Light
title_full_unstemmed Enhanced β-carotene and Biomass Production by Induced Mixotrophy in Dunaliella salina across a Combined Strategy of Glycerol, Salinity, and Light
title_short Enhanced β-carotene and Biomass Production by Induced Mixotrophy in Dunaliella salina across a Combined Strategy of Glycerol, Salinity, and Light
title_sort enhanced β-carotene and biomass production by induced mixotrophy in dunaliella salina across a combined strategy of glycerol, salinity, and light
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8708783/
https://www.ncbi.nlm.nih.gov/pubmed/34940624
http://dx.doi.org/10.3390/metabo11120866
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