Published in BMC Genomics on December 03, 2014
Evolutionary engineering of a wine yeast strain revealed a key role of inositol and mannoprotein metabolism during low-temperature fermentation. BMC Genomics (2015) 0.80
Genome-Wide Transcriptional Response of Saccharomyces cerevisiae to Stress-Induced Perturbations. Front Bioeng Biotechnol (2016) 0.78
Correlation between Low Temperature Adaptation and Oxidative Stress in Saccharomyces cerevisiae. Front Microbiol (2016) 0.77
Per aspera ad astra: When harmful chromosomal translocations become a plus value in genetic evolution. Lessons from Saccharomyces cerevisiae. Microb Cell (2015) 0.75
Role of Mitochondrial Retrograde Pathway in Regulating Ethanol-Inducible Filamentous Growth in Yeast. Front Physiol (2017) 0.75
The genetic architecture of low-temperature adaptation in the wine yeast Saccharomyces cerevisiae. BMC Genomics (2017) 0.75
Microbial Resources and Enological Significance: Opportunities and Benefits. Front Microbiol (2017) 0.75
Transformation of yeast by lithium acetate/single-stranded carrier DNA/polyethylene glycol method. Methods Enzymol (2002) 13.78
Population genomics of domestic and wild yeasts. Nature (2009) 11.79
A new efficient gene disruption cassette for repeated use in budding yeast. Nucleic Acids Res (1996) 11.05
Modeling of the bacterial growth curve. Appl Environ Microbiol (1990) 8.35
Linking genome and proteome by mass spectrometry: large-scale identification of yeast proteins from two dimensional gels. Proc Natl Acad Sci U S A (1996) 8.10
Optimized cassettes for fluorescent protein tagging in Saccharomyces cerevisiae. Yeast (2004) 5.26
Metabolism of sulfur amino acids in Saccharomyces cerevisiae. Microbiol Mol Biol Rev (1997) 4.11
Growth control of the eukaryote cell: a systems biology study in yeast. J Biol (2007) 2.79
Growth-rate regulated genes have profound impact on interpretation of transcriptome profiling in Saccharomyces cerevisiae. Genome Biol (2006) 2.43
Revealing the genetic structure of a trait by sequencing a population under selection. Genome Res (2011) 2.42
A high-definition view of functional genetic variation from natural yeast genomes. Mol Biol Evol (2014) 2.10
Assessing the complex architecture of polygenic traits in diverged yeast populations. Mol Ecol (2011) 1.83
A new antioxidant with alkyl hydroperoxide defense properties in yeast. J Biol Chem (1999) 1.50
Characterization of the calcium-mediated response to alkaline stress in Saccharomyces cerevisiae. J Biol Chem (2004) 1.45
The highly conserved, coregulated SNO and SNZ gene families in Saccharomyces cerevisiae respond to nutrient limitation. J Bacteriol (1998) 1.41
Analysis of yeast populations during alcoholic fermentation: a six year follow-up study. Syst Appl Microbiol (2002) 1.39
Cold adaptation in budding yeast. Mol Biol Cell (2004) 1.36
Optimisation of interdelta analysis for Saccharomyces cerevisiae strain characterisation. FEMS Microbiol Lett (2003) 1.28
The glyceraldehyde-3-phosphate dehydrogenase polypeptides encoded by the Saccharomyces cerevisiae TDH1, TDH2 and TDH3 genes are also cell wall proteins. Microbiology (2001) 1.27
Initial enzyme for glycosylphosphatidylinositol biosynthesis requires PIG-P and is regulated by DPM2. EMBO J (2000) 1.26
Drug:H+ antiporters in chemical stress response in yeast. Trends Microbiol (2008) 1.25
Cooperation of yeast peroxiredoxins Tsa1p and Tsa2p in the cellular defense against oxidative and nitrosative stress. J Biol Chem (2001) 1.25
Cold response in Saccharomyces cerevisiae: new functions for old mechanisms. FEMS Microbiol Rev (2007) 1.24
Dissection of combinatorial control by the Met4 transcriptional complex. Mol Biol Cell (2009) 1.22
Acclimation of Saccharomyces cerevisiae to low temperature: a chemostat-based transcriptome analysis. Mol Biol Cell (2007) 1.18
Comprehensive expression analysis of time-dependent genetic responses in yeast cells to low temperature. J Biol Chem (2002) 1.18
Yeast population dynamics in spontaneous fermentations: comparison between two different wine-producing areas over a period of three years. Antonie Van Leeuwenhoek (2001) 1.17
Simultaneous overexpression of enzymes of the lower part of glycolysis can enhance the fermentative capacity of Saccharomyces cerevisiae. Yeast (2000) 1.10
Unravelling evolutionary strategies of yeast for improving galactose utilization through integrated systems level analysis. Proc Natl Acad Sci U S A (2011) 1.09
Coordinated regulation of sulfur and phospholipid metabolism reflects the importance of methylation in the growth of yeast. Mol Biol Cell (2011) 1.08
Genome-wide expression analysis of yeast response during exposure to 4 degrees C. Extremophiles (2005) 1.07
Biodiversity of the P450 catalytic cycle: yeast cytochrome b5/NADH cytochrome b5 reductase complex efficiently drives the entire sterol 14-demethylation (CYP51) reaction. FEBS Lett (1999) 1.07
Survival of starving yeast is correlated with oxidative stress response and nonrespiratory mitochondrial function. Proc Natl Acad Sci U S A (2011) 1.05
Integration of transcriptomic and metabolic analyses for understanding the global responses of low-temperature winemaking fermentations. FEMS Yeast Res (2006) 1.03
Interaction with Btn2p is required for localization of Rsglp: Btn2p-mediated changes in arginine uptake in Saccharomyces cerevisiae. Eukaryot Cell (2002) 1.02
Osmoresponsive proteins and functional assessment strategies in Saccharomyces cerevisiae. Electrophoresis (1997) 0.97
Yeast gene expression during growth at low temperature. Cryobiology (2003) 0.97
Nitrogen requirements of commercial wine yeast strains during fermentation of a synthetic grape must. Food Microbiol (2012) 0.96
Growth temperature downshift induces antioxidant response in Saccharomyces cerevisiae. Biochem Biophys Res Commun (2003) 0.93
Metabolomic comparison of Saccharomyces cerevisiae and the cryotolerant species S. bayanus var. uvarum and S. kudriavzevii during wine fermentation at low temperature. PLoS One (2013) 0.92
Lipid composition of wine strains of Saccharomyces kudriavzevii and Saccharomyces cerevisiae grown at low temperature. Int J Food Microbiol (2012) 0.92
Perturbation-based analysis and modeling of combinatorial regulation in the yeast sulfur assimilation pathway. Mol Biol Cell (2012) 0.92
The impact of genomic variability on gene expression in environmental Saccharomyces cerevisiae strains. Environ Microbiol (2013) 0.90
Differential synthesis of glyceraldehyde-3-phosphate dehydrogenase polypeptides in stressed yeast cells. FEMS Microbiol Lett (1995) 0.90
Quantifying the individual effects of ethanol and temperature on the fitness advantage of Saccharomyces cerevisiae. Food Microbiol (2011) 0.86
Proteomic evolution of a wine yeast during the first hours of fermentation. FEMS Yeast Res (2008) 0.85
Metabolic flux analysis during the exponential growth phase of Saccharomyces cerevisiae in wine fermentations. PLoS One (2013) 0.83
Functional analysis to identify genes in wine yeast adaptation to low-temperature fermentation. J Appl Microbiol (2012) 0.82
Transcriptomics of cryophilic Saccharomyces kudriavzevii reveals the key role of gene translation efficiency in cold stress adaptations. BMC Genomics (2014) 0.81
Fermentation temperature modulates phosphatidylethanolamine and phosphatidylinositol levels in the cell membrane of Saccharomyces cerevisiae. Appl Environ Microbiol (2013) 0.81
Phenotypic analysis of mutant and overexpressing strains of lipid metabolism genes in Saccharomyces cerevisiae: implication in growth at low temperatures. Int J Food Microbiol (2012) 0.80
Phosphatidylcholine synthesis in yeast. J Lipid Res (1988) 0.78
Use of chemostat cultures mimicking different phases of wine fermentations as a tool for quantitative physiological analysis. Microb Cell Fact (2014) 0.78
Effect of low temperature upon vitality of Saccharomyces cerevisiae phospholipid mutants. Yeast (2012) 0.77