Publications by authors named "Camila Baeza"

The wine strains of transform glucose into ethanol and other byproducts such as glycerol and acetate. The balance of these metabolites is important during the fermentation process, which impacts the organoleptic properties of wines. Ethanol and glycerol productions are mainly controlled by the and genes, which encode for the alcohol dehydrogenase and glycerol-3-phosphate-dehydrogenase enzymes, respectively.

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Domestication can be understood as a symbiotic relationship that benefits both domesticator and domesticated species, involving multiple genetic changes that configure the phenotype of the domesticated species. One of the most important domesticated species is the yeast Saccharomyces cerevisiae, with both domesticated strains used for different fermentations processes for thousands of years and wild strains existing only in environments without human intervention; however, little is known about the phenotypic effects associated with its domestication. In the present work, we studied the effect of domestication on yeast TORC1 activation, a pleiotropic signalling pathway conserved across the eukaryotic domain.

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In the budding yeast , the FUN-LOV (FUNgal Light Oxygen and Voltage) optogenetic switch enables high levels of light-activated gene expression in a reversible and tunable fashion. The FUN-LOV components, under identical promoter and terminator sequences, are encoded in two different plasmids, which limits its future applications in wild and industrial yeast strains. In this work, we aim to expand the molecular versatility of the FUN-LOV switch to increase its biotechnological applications.

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Article Synopsis
  • Alcoholic fermentation is a process where yeast adapts to stress, but nitrogen limitations in grape must can hinder fermentation, causing economic issues for winemakers.
  • This study involved selecting yeast populations adapted to nitrogen scarcity in bioreactors and sequencing their genomes and transcriptomes to find genetic traits that favor adaptation.
  • The research found that genes from a wild, non-domesticated yeast strain (NA) were overexpressed, and specific genetic changes correlated with improved growth under nitrogen-limited conditions, suggesting that these wild alleles could enhance the robustness of wine yeast strains.
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