The present work was aimed at developing industrial S. cerevisiae strains with improved tolerance to two types of stressors encountered during the fermentation of lignocellulosic biomass that affect ethanol yield and productivity, namely hydrolysate-derived inhibitors and high temperature, and at understanding the response of yeast and mechanisms of adaptation to such stressors. In one part of the study, key amino acid substitutions that were responsible for the acquired ability of a mutated yeast enzyme to convert HMF, one of the lignocellulosic inhibitors (LI), into a less inhibitory compound were identified in the active site of the enzyme. The specific properties of the mutant were investigated. In the second part of the thesis, differe...
Most of the current processes for bioethanol production are based on the use of Very-High-Gravity (V...
The realisation of a new, oil independent bio-based economy relies on the development of competitive...
The fermentation of lignocellulose hydrolysates by Saccharomyces cerevisiae for ethanol production w...
BACKGROUND: During industrial fermentation of lignocellulose residues to produce bioethanol, microor...
Switching bioethanol production from 1st generation biomass to 2nd generation biomass requires resol...
The understanding of the determinants of yeast tolerance to inhibitory compounds present in ferment...
The stress imposed by ethanol to Saccharomyces cerevisiae cells are one of the most challenging limi...
Background: During industrial fermentation of lignocellulose residues to produce bioethanol, micro...
Abstract Background The fermentation of lignocellulose hydrolysates to ethanol requires robust xylos...
Economically feasible bioethanol process from lignocellulose requires efficient fermentation by yeas...
The extensive research on second-generation ethanol has paved the way to a new concept of bio-based ...
Saccharomyces cerevisiae strains having a broad range of substrate utilization, rapid substrate cons...
The production of ethanol based on lignocellulosic biomass requires the fermentation of a hydrolysat...
Efficient biochemical conversion of renewable carbon sources is crucial for the transition into an e...
The second-generation (2G) fermentation environment for lignocellulose conversion presents unique ch...
Most of the current processes for bioethanol production are based on the use of Very-High-Gravity (V...
The realisation of a new, oil independent bio-based economy relies on the development of competitive...
The fermentation of lignocellulose hydrolysates by Saccharomyces cerevisiae for ethanol production w...
BACKGROUND: During industrial fermentation of lignocellulose residues to produce bioethanol, microor...
Switching bioethanol production from 1st generation biomass to 2nd generation biomass requires resol...
The understanding of the determinants of yeast tolerance to inhibitory compounds present in ferment...
The stress imposed by ethanol to Saccharomyces cerevisiae cells are one of the most challenging limi...
Background: During industrial fermentation of lignocellulose residues to produce bioethanol, micro...
Abstract Background The fermentation of lignocellulose hydrolysates to ethanol requires robust xylos...
Economically feasible bioethanol process from lignocellulose requires efficient fermentation by yeas...
The extensive research on second-generation ethanol has paved the way to a new concept of bio-based ...
Saccharomyces cerevisiae strains having a broad range of substrate utilization, rapid substrate cons...
The production of ethanol based on lignocellulosic biomass requires the fermentation of a hydrolysat...
Efficient biochemical conversion of renewable carbon sources is crucial for the transition into an e...
The second-generation (2G) fermentation environment for lignocellulose conversion presents unique ch...
Most of the current processes for bioethanol production are based on the use of Very-High-Gravity (V...
The realisation of a new, oil independent bio-based economy relies on the development of competitive...
The fermentation of lignocellulose hydrolysates by Saccharomyces cerevisiae for ethanol production w...