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An Improved Genome-Scale Metabolic Model of Arthrospira platensis C1 (iAK888) and Its Application in Glycogen Overproduction

Glycogen-enriched biomass of Arthrospira platensis has increasingly gained attention as a source for bioethanol production. To study the metabolic capabilities of glycogen production in A. platensis C1, a genome-scale metabolic model (GEM) could be a useful tool for predicting cellular behavior and...

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Autores principales: Klanchui, Amornpan, Dulsawat, Sudarat, Chaloemngam, Kullapat, Cheevadhanarak, Supapon, Prommeenate, Peerada, Meechai, Asawin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6315860/
https://www.ncbi.nlm.nih.gov/pubmed/30486288
http://dx.doi.org/10.3390/metabo8040084
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author Klanchui, Amornpan
Dulsawat, Sudarat
Chaloemngam, Kullapat
Cheevadhanarak, Supapon
Prommeenate, Peerada
Meechai, Asawin
author_facet Klanchui, Amornpan
Dulsawat, Sudarat
Chaloemngam, Kullapat
Cheevadhanarak, Supapon
Prommeenate, Peerada
Meechai, Asawin
author_sort Klanchui, Amornpan
collection PubMed
description Glycogen-enriched biomass of Arthrospira platensis has increasingly gained attention as a source for bioethanol production. To study the metabolic capabilities of glycogen production in A. platensis C1, a genome-scale metabolic model (GEM) could be a useful tool for predicting cellular behavior and suggesting strategies for glycogen overproduction. New experimentally validated GEM of A. platensis C1 namely iAK888, which has improved metabolic coverage and functionality was employed in this research. The iAK888 is a fully functional compartmentalized GEM consisting of 888 genes, 1,096 reactions, and 994 metabolites. This model was demonstrated to reasonably predict growth and glycogen fluxes under different growth conditions. In addition, iAK888 was further employed to predict the effect of deficiencies of NO(3)(−), PO(4)(3−), or SO(4)(2−) on the growth and glycogen production in A. platensis C1. The simulation results showed that these nutrient limitations led to a decrease in growth flux and an increase in glycogen flux. The experiment of A. platensis C1 confirmed the enhancement of glycogen fluxes after the cells being transferred from normal Zarrouk’s medium to either NO(3)(−), PO(4)(3−), or SO(4)(2−)-free Zarrouk’s media. Therefore, iAK888 could be served as a predictive model for glycogen overproduction and a valuable multidisciplinary tool for further studies of this important academic and industrial organism.
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spelling pubmed-63158602019-01-10 An Improved Genome-Scale Metabolic Model of Arthrospira platensis C1 (iAK888) and Its Application in Glycogen Overproduction Klanchui, Amornpan Dulsawat, Sudarat Chaloemngam, Kullapat Cheevadhanarak, Supapon Prommeenate, Peerada Meechai, Asawin Metabolites Article Glycogen-enriched biomass of Arthrospira platensis has increasingly gained attention as a source for bioethanol production. To study the metabolic capabilities of glycogen production in A. platensis C1, a genome-scale metabolic model (GEM) could be a useful tool for predicting cellular behavior and suggesting strategies for glycogen overproduction. New experimentally validated GEM of A. platensis C1 namely iAK888, which has improved metabolic coverage and functionality was employed in this research. The iAK888 is a fully functional compartmentalized GEM consisting of 888 genes, 1,096 reactions, and 994 metabolites. This model was demonstrated to reasonably predict growth and glycogen fluxes under different growth conditions. In addition, iAK888 was further employed to predict the effect of deficiencies of NO(3)(−), PO(4)(3−), or SO(4)(2−) on the growth and glycogen production in A. platensis C1. The simulation results showed that these nutrient limitations led to a decrease in growth flux and an increase in glycogen flux. The experiment of A. platensis C1 confirmed the enhancement of glycogen fluxes after the cells being transferred from normal Zarrouk’s medium to either NO(3)(−), PO(4)(3−), or SO(4)(2−)-free Zarrouk’s media. Therefore, iAK888 could be served as a predictive model for glycogen overproduction and a valuable multidisciplinary tool for further studies of this important academic and industrial organism. MDPI 2018-11-26 /pmc/articles/PMC6315860/ /pubmed/30486288 http://dx.doi.org/10.3390/metabo8040084 Text en © 2018 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
Klanchui, Amornpan
Dulsawat, Sudarat
Chaloemngam, Kullapat
Cheevadhanarak, Supapon
Prommeenate, Peerada
Meechai, Asawin
An Improved Genome-Scale Metabolic Model of Arthrospira platensis C1 (iAK888) and Its Application in Glycogen Overproduction
title An Improved Genome-Scale Metabolic Model of Arthrospira platensis C1 (iAK888) and Its Application in Glycogen Overproduction
title_full An Improved Genome-Scale Metabolic Model of Arthrospira platensis C1 (iAK888) and Its Application in Glycogen Overproduction
title_fullStr An Improved Genome-Scale Metabolic Model of Arthrospira platensis C1 (iAK888) and Its Application in Glycogen Overproduction
title_full_unstemmed An Improved Genome-Scale Metabolic Model of Arthrospira platensis C1 (iAK888) and Its Application in Glycogen Overproduction
title_short An Improved Genome-Scale Metabolic Model of Arthrospira platensis C1 (iAK888) and Its Application in Glycogen Overproduction
title_sort improved genome-scale metabolic model of arthrospira platensis c1 (iak888) and its application in glycogen overproduction
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6315860/
https://www.ncbi.nlm.nih.gov/pubmed/30486288
http://dx.doi.org/10.3390/metabo8040084
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