Cargando…

Improved Sugarcane-Based Fermentation Processes by an Industrial Fuel-Ethanol Yeast Strain

In Brazil, sucrose-rich broths (cane juice and/or molasses) are used to produce billions of liters of both fuel ethanol and cachaça per year using selected Saccharomyces cerevisiae industrial strains. Considering the important role of feedstock (sugar) prices in the overall process economics, to imp...

Descripción completa

Detalles Bibliográficos
Autores principales: Muller, Gabriela, de Godoy, Victor R., Dário, Marcelo G., Duval, Eduarda H., Alves-Jr, Sergio L., Bücker, Augusto, Rosa, Carlos A., Dunn, Barbara, Sherlock, Gavin, Stambuk, Boris U.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10456111/
https://www.ncbi.nlm.nih.gov/pubmed/37623574
http://dx.doi.org/10.3390/jof9080803
_version_ 1785096617610706944
author Muller, Gabriela
de Godoy, Victor R.
Dário, Marcelo G.
Duval, Eduarda H.
Alves-Jr, Sergio L.
Bücker, Augusto
Rosa, Carlos A.
Dunn, Barbara
Sherlock, Gavin
Stambuk, Boris U.
author_facet Muller, Gabriela
de Godoy, Victor R.
Dário, Marcelo G.
Duval, Eduarda H.
Alves-Jr, Sergio L.
Bücker, Augusto
Rosa, Carlos A.
Dunn, Barbara
Sherlock, Gavin
Stambuk, Boris U.
author_sort Muller, Gabriela
collection PubMed
description In Brazil, sucrose-rich broths (cane juice and/or molasses) are used to produce billions of liters of both fuel ethanol and cachaça per year using selected Saccharomyces cerevisiae industrial strains. Considering the important role of feedstock (sugar) prices in the overall process economics, to improve sucrose fermentation the genetic characteristics of a group of eight fuel-ethanol and five cachaça industrial yeasts that tend to dominate the fermentors during the production season were determined by array comparative genomic hybridization. The widespread presence of genes encoding invertase at multiple telomeres has been shown to be a common feature of both baker’s and distillers’ yeast strains, and is postulated to be an adaptation to sucrose-rich broths. Our results show that only two strains (one fuel-ethanol and one cachaça yeast) have amplification of genes encoding invertase, with high specific activity. The other industrial yeast strains had a single locus (SUC2) in their genome, with different patterns of invertase activity. These results indicate that invertase activity probably does not limit sucrose fermentation during fuel-ethanol and cachaça production by these industrial strains. Using this knowledge, we changed the mode of sucrose metabolism of an industrial strain by avoiding extracellular invertase activity, overexpressing the intracellular invertase, and increasing its transport through the AGT1 permease. This approach allowed the direct consumption of the disaccharide by the cells, without releasing glucose or fructose into the medium, and a 11% higher ethanol production from sucrose by the modified industrial yeast, when compared to its parental strain.
format Online
Article
Text
id pubmed-10456111
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-104561112023-08-26 Improved Sugarcane-Based Fermentation Processes by an Industrial Fuel-Ethanol Yeast Strain Muller, Gabriela de Godoy, Victor R. Dário, Marcelo G. Duval, Eduarda H. Alves-Jr, Sergio L. Bücker, Augusto Rosa, Carlos A. Dunn, Barbara Sherlock, Gavin Stambuk, Boris U. J Fungi (Basel) Article In Brazil, sucrose-rich broths (cane juice and/or molasses) are used to produce billions of liters of both fuel ethanol and cachaça per year using selected Saccharomyces cerevisiae industrial strains. Considering the important role of feedstock (sugar) prices in the overall process economics, to improve sucrose fermentation the genetic characteristics of a group of eight fuel-ethanol and five cachaça industrial yeasts that tend to dominate the fermentors during the production season were determined by array comparative genomic hybridization. The widespread presence of genes encoding invertase at multiple telomeres has been shown to be a common feature of both baker’s and distillers’ yeast strains, and is postulated to be an adaptation to sucrose-rich broths. Our results show that only two strains (one fuel-ethanol and one cachaça yeast) have amplification of genes encoding invertase, with high specific activity. The other industrial yeast strains had a single locus (SUC2) in their genome, with different patterns of invertase activity. These results indicate that invertase activity probably does not limit sucrose fermentation during fuel-ethanol and cachaça production by these industrial strains. Using this knowledge, we changed the mode of sucrose metabolism of an industrial strain by avoiding extracellular invertase activity, overexpressing the intracellular invertase, and increasing its transport through the AGT1 permease. This approach allowed the direct consumption of the disaccharide by the cells, without releasing glucose or fructose into the medium, and a 11% higher ethanol production from sucrose by the modified industrial yeast, when compared to its parental strain. MDPI 2023-07-29 /pmc/articles/PMC10456111/ /pubmed/37623574 http://dx.doi.org/10.3390/jof9080803 Text en © 2023 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
Muller, Gabriela
de Godoy, Victor R.
Dário, Marcelo G.
Duval, Eduarda H.
Alves-Jr, Sergio L.
Bücker, Augusto
Rosa, Carlos A.
Dunn, Barbara
Sherlock, Gavin
Stambuk, Boris U.
Improved Sugarcane-Based Fermentation Processes by an Industrial Fuel-Ethanol Yeast Strain
title Improved Sugarcane-Based Fermentation Processes by an Industrial Fuel-Ethanol Yeast Strain
title_full Improved Sugarcane-Based Fermentation Processes by an Industrial Fuel-Ethanol Yeast Strain
title_fullStr Improved Sugarcane-Based Fermentation Processes by an Industrial Fuel-Ethanol Yeast Strain
title_full_unstemmed Improved Sugarcane-Based Fermentation Processes by an Industrial Fuel-Ethanol Yeast Strain
title_short Improved Sugarcane-Based Fermentation Processes by an Industrial Fuel-Ethanol Yeast Strain
title_sort improved sugarcane-based fermentation processes by an industrial fuel-ethanol yeast strain
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10456111/
https://www.ncbi.nlm.nih.gov/pubmed/37623574
http://dx.doi.org/10.3390/jof9080803
work_keys_str_mv AT mullergabriela improvedsugarcanebasedfermentationprocessesbyanindustrialfuelethanolyeaststrain
AT degodoyvictorr improvedsugarcanebasedfermentationprocessesbyanindustrialfuelethanolyeaststrain
AT dariomarcelog improvedsugarcanebasedfermentationprocessesbyanindustrialfuelethanolyeaststrain
AT duvaleduardah improvedsugarcanebasedfermentationprocessesbyanindustrialfuelethanolyeaststrain
AT alvesjrsergiol improvedsugarcanebasedfermentationprocessesbyanindustrialfuelethanolyeaststrain
AT buckeraugusto improvedsugarcanebasedfermentationprocessesbyanindustrialfuelethanolyeaststrain
AT rosacarlosa improvedsugarcanebasedfermentationprocessesbyanindustrialfuelethanolyeaststrain
AT dunnbarbara improvedsugarcanebasedfermentationprocessesbyanindustrialfuelethanolyeaststrain
AT sherlockgavin improvedsugarcanebasedfermentationprocessesbyanindustrialfuelethanolyeaststrain
AT stambukborisu improvedsugarcanebasedfermentationprocessesbyanindustrialfuelethanolyeaststrain