Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Improving xylose consumption in Rhodotorula toruloides through heterologous expression of xylose reductase and xylulokinase

View through CrossRef
Abstract The oleaginous yeast Rhodotorula toruloides is a promising host for sustainable bioproduction due to its capacity to naturally utilize xylose present in lignocellulosic biomass, an abundant and renewable resource. However, its xylose consumption pathway is still not completely understood. To better understand the potential limitations in xylose utilization in R. toruloides , heterologous xylose reductase from Scheffersomyces stipitis , together with the native and heterologous xylulokinases from three different microorganisms ( Scheffersomyces stipitis, Candida intermedia , and Escherichia coli ) were overexpressed solely and in combination. The overexpression of xylulokinases showed more significant improvements in terms of xylose consumption rate compared to the single overexpression of xylose reductase. When the heterologous xylulokinase from Escherichia coli was overexpressed, the specific xylose consumption rate was improved by 66% and the maximum specific growth rate by 30% compared to the parental strain. The xylose specific consumption rate increased by 146% and the maximum specific growth rate increased by 118% when heterologous genes for xylose reductase and xylulokinase from E. coli were overexpressed together. These results suggest that the low expression of xylulokinase in R. toruloides , which has been reported previously, could limit its sugar consumption, while supporting higher lipid accumulation in this yeast.
Title: Improving xylose consumption in Rhodotorula toruloides through heterologous expression of xylose reductase and xylulokinase
Description:
Abstract The oleaginous yeast Rhodotorula toruloides is a promising host for sustainable bioproduction due to its capacity to naturally utilize xylose present in lignocellulosic biomass, an abundant and renewable resource.
However, its xylose consumption pathway is still not completely understood.
To better understand the potential limitations in xylose utilization in R.
toruloides , heterologous xylose reductase from Scheffersomyces stipitis , together with the native and heterologous xylulokinases from three different microorganisms ( Scheffersomyces stipitis, Candida intermedia , and Escherichia coli ) were overexpressed solely and in combination.
The overexpression of xylulokinases showed more significant improvements in terms of xylose consumption rate compared to the single overexpression of xylose reductase.
When the heterologous xylulokinase from Escherichia coli was overexpressed, the specific xylose consumption rate was improved by 66% and the maximum specific growth rate by 30% compared to the parental strain.
The xylose specific consumption rate increased by 146% and the maximum specific growth rate increased by 118% when heterologous genes for xylose reductase and xylulokinase from E.
coli were overexpressed together.
These results suggest that the low expression of xylulokinase in R.
toruloides , which has been reported previously, could limit its sugar consumption, while supporting higher lipid accumulation in this yeast.

Related Results

Screening and Growth Characterization of Non-conventional Yeasts in a Hemicellulosic Hydrolysate
Screening and Growth Characterization of Non-conventional Yeasts in a Hemicellulosic Hydrolysate
Lignocellulosic biomass is an attractive raw material for the sustainable production of chemicals and materials using microbial cell factories. Most of the existing bioprocesses fo...
Current advances in alteration of fatty acid profile in Rhodotorula toruloides: a mini-review
Current advances in alteration of fatty acid profile in Rhodotorula toruloides: a mini-review
AbstractMicrobial lipids are considered promising and environmentally friendly substitutes for fossil fuels and plant-derived oils. They alleviate the depletion of limited petroleu...
Systematic improvement of isobutanol production from d-xylose in engineered Saccharomyces cerevisiae
Systematic improvement of isobutanol production from d-xylose in engineered Saccharomyces cerevisiae
Abstract As the importance of reducing carbon emissions as a means to limit the serious effects of global climate change becomes apparent, synthetic biologists and me...

Back to Top