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Oxygenation influences xylose fermentation and gene expression in the yeast genera Spathaspora and Scheffersomyces
by
Lipzen, Anna
, Sato, Trey K.
, Mondo, Stephen J.
, Hittinger, Chris Todd
, Pangilinan, Jasmyn
, Andreopoulos, Bill
, Rosa, Carlos A.
, Grigoriev, Igor V.
, Mader, Megan
, Krause, David J.
, Barros, Katharina O.
in
09 BIOMASS FUELS
/ Accumulation
/ Aeration
/ Alcohol industry
/ Biodiesel fuels
/ Biofuels
/ Biomass
/ Biomass energy
/ Biotechnology
/ Carbon
/ Carbon sources
/ Chemical properties
/ Chemistry
/ Chemistry and Materials Science
/ Cofactors
/ cost effectiveness
/ Dehydrogenase
/ Environmental Engineering/Biotechnology
/ Enzymatic activity
/ Enzyme activity
/ Enzymes
/ Ethanol
/ ethanol production
/ excretion
/ Fermentation
/ fuel production
/ Gene expression
/ Genes
/ Genetic aspects
/ Genetic research
/ Glycerol
/ Hypoxia
/ Lignocellulose
/ Metabolism
/ Metabolites
/ Methods
/ Microbial genetic engineering
/ Microbiology
/ Microorganisms
/ Monosaccharides
/ Nicotinamide adenine dinucleotide
/ Oxidation-reduction reaction
/ oxidoreductases
/ Oxygen
/ Oxygenation
/ Physiological aspects
/ Plant Breeding/Biotechnology
/ Productivity
/ Reductases
/ Renewable and Green Energy
/ Respiration
/ Saccharomyces cerevisiae
/ Scheffersomyces stipitis
/ sequence analysis
/ Serinales (CUG-Ser1 clade)
/ Species
/ Sugars
/ Xylitol
/ Xylitol dehydrogenase
/ Xylose
/ Xylose fermentation
/ Xylose reductase
/ Xylulose
/ Yeast
/ Yeast fungi
/ yeasts
2024
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Oxygenation influences xylose fermentation and gene expression in the yeast genera Spathaspora and Scheffersomyces
by
Lipzen, Anna
, Sato, Trey K.
, Mondo, Stephen J.
, Hittinger, Chris Todd
, Pangilinan, Jasmyn
, Andreopoulos, Bill
, Rosa, Carlos A.
, Grigoriev, Igor V.
, Mader, Megan
, Krause, David J.
, Barros, Katharina O.
in
09 BIOMASS FUELS
/ Accumulation
/ Aeration
/ Alcohol industry
/ Biodiesel fuels
/ Biofuels
/ Biomass
/ Biomass energy
/ Biotechnology
/ Carbon
/ Carbon sources
/ Chemical properties
/ Chemistry
/ Chemistry and Materials Science
/ Cofactors
/ cost effectiveness
/ Dehydrogenase
/ Environmental Engineering/Biotechnology
/ Enzymatic activity
/ Enzyme activity
/ Enzymes
/ Ethanol
/ ethanol production
/ excretion
/ Fermentation
/ fuel production
/ Gene expression
/ Genes
/ Genetic aspects
/ Genetic research
/ Glycerol
/ Hypoxia
/ Lignocellulose
/ Metabolism
/ Metabolites
/ Methods
/ Microbial genetic engineering
/ Microbiology
/ Microorganisms
/ Monosaccharides
/ Nicotinamide adenine dinucleotide
/ Oxidation-reduction reaction
/ oxidoreductases
/ Oxygen
/ Oxygenation
/ Physiological aspects
/ Plant Breeding/Biotechnology
/ Productivity
/ Reductases
/ Renewable and Green Energy
/ Respiration
/ Saccharomyces cerevisiae
/ Scheffersomyces stipitis
/ sequence analysis
/ Serinales (CUG-Ser1 clade)
/ Species
/ Sugars
/ Xylitol
/ Xylitol dehydrogenase
/ Xylose
/ Xylose fermentation
/ Xylose reductase
/ Xylulose
/ Yeast
/ Yeast fungi
/ yeasts
2024
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Oxygenation influences xylose fermentation and gene expression in the yeast genera Spathaspora and Scheffersomyces
by
Lipzen, Anna
, Sato, Trey K.
, Mondo, Stephen J.
, Hittinger, Chris Todd
, Pangilinan, Jasmyn
, Andreopoulos, Bill
, Rosa, Carlos A.
, Grigoriev, Igor V.
, Mader, Megan
, Krause, David J.
, Barros, Katharina O.
in
09 BIOMASS FUELS
/ Accumulation
/ Aeration
/ Alcohol industry
/ Biodiesel fuels
/ Biofuels
/ Biomass
/ Biomass energy
/ Biotechnology
/ Carbon
/ Carbon sources
/ Chemical properties
/ Chemistry
/ Chemistry and Materials Science
/ Cofactors
/ cost effectiveness
/ Dehydrogenase
/ Environmental Engineering/Biotechnology
/ Enzymatic activity
/ Enzyme activity
/ Enzymes
/ Ethanol
/ ethanol production
/ excretion
/ Fermentation
/ fuel production
/ Gene expression
/ Genes
/ Genetic aspects
/ Genetic research
/ Glycerol
/ Hypoxia
/ Lignocellulose
/ Metabolism
/ Metabolites
/ Methods
/ Microbial genetic engineering
/ Microbiology
/ Microorganisms
/ Monosaccharides
/ Nicotinamide adenine dinucleotide
/ Oxidation-reduction reaction
/ oxidoreductases
/ Oxygen
/ Oxygenation
/ Physiological aspects
/ Plant Breeding/Biotechnology
/ Productivity
/ Reductases
/ Renewable and Green Energy
/ Respiration
/ Saccharomyces cerevisiae
/ Scheffersomyces stipitis
/ sequence analysis
/ Serinales (CUG-Ser1 clade)
/ Species
/ Sugars
/ Xylitol
/ Xylitol dehydrogenase
/ Xylose
/ Xylose fermentation
/ Xylose reductase
/ Xylulose
/ Yeast
/ Yeast fungi
/ yeasts
2024
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Oxygenation influences xylose fermentation and gene expression in the yeast genera Spathaspora and Scheffersomyces
Journal Article
Oxygenation influences xylose fermentation and gene expression in the yeast genera Spathaspora and Scheffersomyces
2024
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Overview
Background
Cost-effective production of biofuels from lignocellulose requires the fermentation of
d
-xylose. Many yeast species within and closely related to the genera
Spathaspora
and
Scheffersomyces
(both of the order Serinales) natively assimilate and ferment xylose. Other species consume xylose inefficiently, leading to extracellular accumulation of xylitol. Xylitol excretion is thought to be due to the different cofactor requirements of the first two steps of xylose metabolism. Xylose reductase (XR) generally uses NADPH to reduce xylose to xylitol, while xylitol dehydrogenase (XDH) generally uses NAD
+
to oxidize xylitol to xylulose, creating an imbalanced redox pathway. This imbalance is thought to be particularly consequential in hypoxic or anoxic environments.
Results
We screened the growth of xylose-fermenting yeast species in high and moderate aeration and identified both ethanol producers and xylitol producers. Selected species were further characterized for their XR and XDH cofactor preferences by enzyme assays and gene expression patterns by RNA-Seq. Our data revealed that xylose metabolism is more redox balanced in some species, but it is strongly affected by oxygen levels. Under high aeration, most species switched from ethanol production to xylitol accumulation, despite the availability of ample oxygen to accept electrons from NADH. This switch was followed by decreases in enzyme activity and the expression of genes related to xylose metabolism, suggesting that bottlenecks in xylose fermentation are not always due to cofactor preferences. Finally, we expressed
XYL
genes from multiple
Scheffersomyces
species in a strain of
Saccharomyces cerevisiae
. Recombinant
S. cerevisiae
expressing
XYL1
from
Scheffersomyces xylosifermentans
, which encodes an XR without a cofactor preference, showed improved anaerobic growth on xylose as the primary carbon source compared to
S. cerevisiae
strain expressing
XYL
genes from
Scheffersomyces stipitis
.
Conclusion
Collectively, our data do not support the hypothesis that xylitol accumulation occurs primarily due to differences in cofactor preferences between xylose reductase and xylitol dehydrogenase; instead, gene expression plays a major role in response to oxygen levels. We have also identified the yeast
Sc. xylosifermentans
as a potential source for genes that can be engineered into
S. cerevisiae
to improve xylose fermentation and biofuel production.
Publisher
BioMed Central,BioMed Central Ltd,Nature Publishing Group,BMC
Subject
/ Aeration
/ Biofuels
/ Biomass
/ Carbon
/ Chemistry and Materials Science
/ Environmental Engineering/Biotechnology
/ Enzymes
/ Ethanol
/ Genes
/ Glycerol
/ Hypoxia
/ Methods
/ Microbial genetic engineering
/ Nicotinamide adenine dinucleotide
/ Oxidation-reduction reaction
/ Oxygen
/ Plant Breeding/Biotechnology
/ Species
/ Sugars
/ Xylitol
/ Xylose
/ Xylulose
/ Yeast
/ yeasts
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