Unknown

Dataset Information

0

Physiological and Molecular Characterization of an Oxidative Stress-Resistant Saccharomyces cerevisiae Strain Obtained by Evolutionary Engineering.


ABSTRACT: Oxidative stress is a major stress type observed in yeast bioprocesses, resulting in a decrease in yeast growth, viability, and productivity. Thus, robust yeast strains with increased resistance to oxidative stress are in highly demand by the industry. In addition, oxidative stress is also associated with aging and age-related complex conditions such as cancer and neurodegenerative diseases. Saccharomyces cerevisiae, as a model eukaryote, has been used to study these complex eukaryotic processes. However, the molecular mechanisms underlying oxidative stress responses and resistance are unclear. In this study, we have employed evolutionary engineering (also known as adaptive laboratory evolution - ALE) strategies to obtain an oxidative stress-resistant and genetically stable S. cerevisiae strain. Comparative physiological, transcriptomic, and genomic analyses of the evolved strain were then performed with respect to the reference strain. The results show that the oxidative stress-resistant evolved strain was also cross-resistant against other types of stressors, including heat, freeze-thaw, ethanol, cobalt, iron, and salt. It was also found to have higher levels of trehalose and glycogen production. Further, comparative transcriptomic analysis showed an upregulation of many genes associated with the stress response, transport, carbohydrate, lipid and cofactor metabolic processes, protein phosphorylation, cell wall organization, and biogenesis. Genes that were downregulated included those related to ribosome and RNA processing, nuclear transport, tRNA, and cell cycle. Whole genome re-sequencing analysis of the evolved strain identified mutations in genes related to the stress response, cell wall organization, carbohydrate metabolism/transport, which are in line with the physiological and transcriptomic results, and may give insight toward the complex molecular mechanisms of oxidative stress resistance.

SUBMITTER: Kocaefe-Ozsen N 

PROVIDER: S-EPMC8911705 | biostudies-literature | 2022

REPOSITORIES: biostudies-literature

altmetric image

Publications

Physiological and Molecular Characterization of an Oxidative Stress-Resistant <i>Saccharomyces cerevisiae</i> Strain Obtained by Evolutionary Engineering.

Kocaefe-Özşen Nazlı N   Yilmaz Bahtiyar B   Alkım Ceren C   Arslan Mevlüt M   Topaloğlu Alican A   Kısakesen Halil L Brahim HLB   Gülsev Erdinç E   Çakar Z Petek ZP  

Frontiers in microbiology 20220224


Oxidative stress is a major stress type observed in yeast bioprocesses, resulting in a decrease in yeast growth, viability, and productivity. Thus, robust yeast strains with increased resistance to oxidative stress are in highly demand by the industry. In addition, oxidative stress is also associated with aging and age-related complex conditions such as cancer and neurodegenerative diseases. <i>Saccharomyces cerevisiae</i>, as a model eukaryote, has been used to study these complex eukaryotic pr  ...[more]

Similar Datasets

2022-02-14 | GSE184952 | GEO
2023-02-07 | GSE224764 | GEO
2025-05-15 | GSE292349 | GEO
| S-EPMC5826675 | biostudies-literature
2018-12-28 | GSE124452 | GEO
2024-11-07 | GSE280996 | GEO
2020-01-09 | GSE143335 | GEO
2013-09-19 | GSE50985 | GEO
2014-09-11 | GSE61317 | GEO
2014-09-30 | GSE61903 | GEO