Cargando…

A Modeled High-Density Fed-Batch Culture Improves Biomass Growth and β-Glucans Accumulation in Microchloropsis salina

Algae and microalgae are used as a source of different biomolecules, such as lipids and carbohydrates. Among carbohydrates, polysaccharides, such as β-glucans, are important for their application as antioxidants, antisepsis, and immunomodulators. In the present work, the β-glucans production potenti...

Descripción completa

Detalles Bibliográficos
Autores principales: Ocaranza, Darío, Balic, Iván, Bruna, Tamara, Moreno, Ignacio, Díaz, Oscar, Moreno, Adrián A., Caro, Nelson
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9738629/
https://www.ncbi.nlm.nih.gov/pubmed/36501269
http://dx.doi.org/10.3390/plants11233229
_version_ 1784847593632694272
author Ocaranza, Darío
Balic, Iván
Bruna, Tamara
Moreno, Ignacio
Díaz, Oscar
Moreno, Adrián A.
Caro, Nelson
author_facet Ocaranza, Darío
Balic, Iván
Bruna, Tamara
Moreno, Ignacio
Díaz, Oscar
Moreno, Adrián A.
Caro, Nelson
author_sort Ocaranza, Darío
collection PubMed
description Algae and microalgae are used as a source of different biomolecules, such as lipids and carbohydrates. Among carbohydrates, polysaccharides, such as β-glucans, are important for their application as antioxidants, antisepsis, and immunomodulators. In the present work, the β-glucans production potential of Microchloropsis salina was assessed using two different culture conditions: a high-density batch and a modeled high-density fed-batch. From the biochemical parameters determined from these two cultures conditions, it was possible to establish that the modeled high-density fed-batch culture improves the biomass growth. It was possible to obtain a biomass productivity equal to 8.00 × 10(−2) ± 2.00 × 10(−3) g/(L × day), while the batch condition reached 5.13 × 10(−2) ± 4.00 × 10(−4) g/(L × day). The same phenomenon was observed when analyzing the β-glucans accumulation, reaching volumetric productivity equal to 5.96 × 10(−3) ± 2.00 × 10(−4) g of product/(L × day) against the 4.10 × 10(−3) ± 2.00 × 10(−4) g of product/(L × day) obtained in batch conditions. These data establish a baseline condition to optimize and significantly increase β-glucan productivity, as well as biomass, adding a new and productive source of this polymer, and integrating its use in potential applications in the human and animal nutraceutical industry.
format Online
Article
Text
id pubmed-9738629
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-97386292022-12-11 A Modeled High-Density Fed-Batch Culture Improves Biomass Growth and β-Glucans Accumulation in Microchloropsis salina Ocaranza, Darío Balic, Iván Bruna, Tamara Moreno, Ignacio Díaz, Oscar Moreno, Adrián A. Caro, Nelson Plants (Basel) Article Algae and microalgae are used as a source of different biomolecules, such as lipids and carbohydrates. Among carbohydrates, polysaccharides, such as β-glucans, are important for their application as antioxidants, antisepsis, and immunomodulators. In the present work, the β-glucans production potential of Microchloropsis salina was assessed using two different culture conditions: a high-density batch and a modeled high-density fed-batch. From the biochemical parameters determined from these two cultures conditions, it was possible to establish that the modeled high-density fed-batch culture improves the biomass growth. It was possible to obtain a biomass productivity equal to 8.00 × 10(−2) ± 2.00 × 10(−3) g/(L × day), while the batch condition reached 5.13 × 10(−2) ± 4.00 × 10(−4) g/(L × day). The same phenomenon was observed when analyzing the β-glucans accumulation, reaching volumetric productivity equal to 5.96 × 10(−3) ± 2.00 × 10(−4) g of product/(L × day) against the 4.10 × 10(−3) ± 2.00 × 10(−4) g of product/(L × day) obtained in batch conditions. These data establish a baseline condition to optimize and significantly increase β-glucan productivity, as well as biomass, adding a new and productive source of this polymer, and integrating its use in potential applications in the human and animal nutraceutical industry. MDPI 2022-11-25 /pmc/articles/PMC9738629/ /pubmed/36501269 http://dx.doi.org/10.3390/plants11233229 Text en © 2022 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
Ocaranza, Darío
Balic, Iván
Bruna, Tamara
Moreno, Ignacio
Díaz, Oscar
Moreno, Adrián A.
Caro, Nelson
A Modeled High-Density Fed-Batch Culture Improves Biomass Growth and β-Glucans Accumulation in Microchloropsis salina
title A Modeled High-Density Fed-Batch Culture Improves Biomass Growth and β-Glucans Accumulation in Microchloropsis salina
title_full A Modeled High-Density Fed-Batch Culture Improves Biomass Growth and β-Glucans Accumulation in Microchloropsis salina
title_fullStr A Modeled High-Density Fed-Batch Culture Improves Biomass Growth and β-Glucans Accumulation in Microchloropsis salina
title_full_unstemmed A Modeled High-Density Fed-Batch Culture Improves Biomass Growth and β-Glucans Accumulation in Microchloropsis salina
title_short A Modeled High-Density Fed-Batch Culture Improves Biomass Growth and β-Glucans Accumulation in Microchloropsis salina
title_sort modeled high-density fed-batch culture improves biomass growth and β-glucans accumulation in microchloropsis salina
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9738629/
https://www.ncbi.nlm.nih.gov/pubmed/36501269
http://dx.doi.org/10.3390/plants11233229
work_keys_str_mv AT ocaranzadario amodeledhighdensityfedbatchcultureimprovesbiomassgrowthandbglucansaccumulationinmicrochloropsissalina
AT balicivan amodeledhighdensityfedbatchcultureimprovesbiomassgrowthandbglucansaccumulationinmicrochloropsissalina
AT brunatamara amodeledhighdensityfedbatchcultureimprovesbiomassgrowthandbglucansaccumulationinmicrochloropsissalina
AT morenoignacio amodeledhighdensityfedbatchcultureimprovesbiomassgrowthandbglucansaccumulationinmicrochloropsissalina
AT diazoscar amodeledhighdensityfedbatchcultureimprovesbiomassgrowthandbglucansaccumulationinmicrochloropsissalina
AT morenoadriana amodeledhighdensityfedbatchcultureimprovesbiomassgrowthandbglucansaccumulationinmicrochloropsissalina
AT caronelson amodeledhighdensityfedbatchcultureimprovesbiomassgrowthandbglucansaccumulationinmicrochloropsissalina
AT ocaranzadario modeledhighdensityfedbatchcultureimprovesbiomassgrowthandbglucansaccumulationinmicrochloropsissalina
AT balicivan modeledhighdensityfedbatchcultureimprovesbiomassgrowthandbglucansaccumulationinmicrochloropsissalina
AT brunatamara modeledhighdensityfedbatchcultureimprovesbiomassgrowthandbglucansaccumulationinmicrochloropsissalina
AT morenoignacio modeledhighdensityfedbatchcultureimprovesbiomassgrowthandbglucansaccumulationinmicrochloropsissalina
AT diazoscar modeledhighdensityfedbatchcultureimprovesbiomassgrowthandbglucansaccumulationinmicrochloropsissalina
AT morenoadriana modeledhighdensityfedbatchcultureimprovesbiomassgrowthandbglucansaccumulationinmicrochloropsissalina
AT caronelson modeledhighdensityfedbatchcultureimprovesbiomassgrowthandbglucansaccumulationinmicrochloropsissalina