A Multiphase Multiobjective Dynamic Genome-Scale Model Shows Different Redox Balancing among Yeast Species of the <i>Saccharomyces</i> Genus in Fermentation
Nonconventional yeast species hold the promise to provide novel metabolic routes to produce industrially relevant compounds and tolerate specific stressors, such as cold temperatures. This work validated the first multiphase multiobjective genome-scale dynamic model to describe carbon and nitrogen...
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American Society for Microbiology
2021
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oai:doaj.org-article:36382bcfb0fa488f8d19fd1190c7b1182021-12-02T18:18:34Z A Multiphase Multiobjective Dynamic Genome-Scale Model Shows Different Redox Balancing among Yeast Species of the <i>Saccharomyces</i> Genus in Fermentation 2379-507710.1128/mSystems.00260-21https://doaj.org/article/36382bcfb0fa488f8d19fd1190c7b1182021-08-01T00:00:00Zhttps://journals.asm.org/doi/10.1128/mSystems.00260-21https://doaj.org/toc/2379-5077 Nonconventional yeast species hold the promise to provide novel metabolic routes to produce industrially relevant compounds and tolerate specific stressors, such as cold temperatures. This work validated the first multiphase multiobjective genome-scale dynamic model to describe carbon and nitrogen metabolism throughout batch fermentation.David HenriquesRomain MineboisSebastián N. MendozaLaura G. MacíasRoberto Pérez-TorradoEladio BarrioBas TeusinkAmparo QuerolEva Balsa-CantoAmerican Society for MicrobiologyarticleMicrobiologyQR1-502ENmSystems, Vol 6, Iss 4 (2021) |
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Microbiology QR1-502 |
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Microbiology QR1-502 David Henriques Romain Minebois Sebastián N. Mendoza Laura G. Macías Roberto Pérez-Torrado Eladio Barrio Bas Teusink Amparo Querol Eva Balsa-Canto A Multiphase Multiobjective Dynamic Genome-Scale Model Shows Different Redox Balancing among Yeast Species of the <i>Saccharomyces</i> Genus in Fermentation |
description |
Nonconventional yeast species hold the promise to provide novel metabolic routes to produce industrially relevant compounds and tolerate specific stressors, such as cold temperatures. This work validated the first multiphase multiobjective genome-scale dynamic model to describe carbon and nitrogen metabolism throughout batch fermentation. |
format |
article |
author |
David Henriques Romain Minebois Sebastián N. Mendoza Laura G. Macías Roberto Pérez-Torrado Eladio Barrio Bas Teusink Amparo Querol Eva Balsa-Canto |
author_facet |
David Henriques Romain Minebois Sebastián N. Mendoza Laura G. Macías Roberto Pérez-Torrado Eladio Barrio Bas Teusink Amparo Querol Eva Balsa-Canto |
author_sort |
David Henriques |
title |
A Multiphase Multiobjective Dynamic Genome-Scale Model Shows Different Redox Balancing among Yeast Species of the
<i>Saccharomyces</i>
Genus in Fermentation
|
title_short |
A Multiphase Multiobjective Dynamic Genome-Scale Model Shows Different Redox Balancing among Yeast Species of the
<i>Saccharomyces</i>
Genus in Fermentation
|
title_full |
A Multiphase Multiobjective Dynamic Genome-Scale Model Shows Different Redox Balancing among Yeast Species of the
<i>Saccharomyces</i>
Genus in Fermentation
|
title_fullStr |
A Multiphase Multiobjective Dynamic Genome-Scale Model Shows Different Redox Balancing among Yeast Species of the
<i>Saccharomyces</i>
Genus in Fermentation
|
title_full_unstemmed |
A Multiphase Multiobjective Dynamic Genome-Scale Model Shows Different Redox Balancing among Yeast Species of the
<i>Saccharomyces</i>
Genus in Fermentation
|
title_sort |
multiphase multiobjective dynamic genome-scale model shows different redox balancing among yeast species of the
<i>saccharomyces</i>
genus in fermentation |
publisher |
American Society for Microbiology |
publishDate |
2021 |
url |
https://doaj.org/article/36382bcfb0fa488f8d19fd1190c7b118 |
work_keys_str_mv |
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