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Updated: Jul 2, 2026

Microarray Analysis for Saccharomyces cerevisiae
Published on: April 7, 2011
DNA damage-induced reactive oxygen species (ROS) stress response in Saccharomyces cerevisiae
Lori A Rowe1, Natalya Degtyareva, Paul W Doetsch
1Department of Biochemistry, Emory University School of Medicine, Atlanta, GA 30322, USA.
Abstract:
Cells are exposed to both endogenous and exogenous sources of reactive oxygen species (ROS). At high levels, ROS can lead to impaired physiological function through cellular damage of DNA, proteins, lipids, and other macromolecules, which can lead to certain human pathologies including cancers, neurodegenerative disorders, and cardiovascular disease, as well as aging. We have employed Saccharomyces cerevisiae as a model system to examine the levels and types of ROS that are produced in response to DNA damage in isogenic strains with different DNA repair capacities. We find that when DNA damage is introduced into cells from exogenous or endogenous sources there is an increase in the amount of intracellular ROS which is not directly related to cell death. We have examined the spectrum of ROS in order to elucidate its role in the cellular response to DNA damage. As an independent verification of the DNA damage-induced ROS response, we show that a major activator of the oxidative stress response, Yap1, relocalizes to the nucleus following exposure to the DNA-alkylating agent methyl methanesulfonate. Our results indicate that the DNA damage-induced increase in intracellular ROS levels is a generalized stress response that is likely to function in various signaling pathways.
Insights
DNA damage triggers increased reactive oxygen species (ROS) in cells, a general stress response not directly causing cell death. This study used yeast to investigate ROS production and its role in DNA damage signaling pathways.
Area of Science:
- Cellular Biology
- Molecular Biology
- Genetics
Background:
- Cells encounter reactive oxygen species (ROS) from internal and external origins.
- Elevated ROS levels cause cellular damage, contributing to aging and diseases like cancer and neurodegenerative disorders.
Purpose of the Study:
- To investigate the levels and types of ROS produced in response to DNA damage.
- To understand the role of ROS in the cellular response to DNA damage using Saccharomyces cerevisiae.
Main Methods:
- Utilized isogenic yeast strains with varying DNA repair capabilities.
- Introduced DNA damage using exogenous and endogenous sources.
- Monitored intracellular ROS levels and Yap1 transcription factor localization.
Main Results:
- DNA damage, regardless of source, increased intracellular ROS levels.
- The ROS increase was not directly correlated with cell death.
- Yap1, an oxidative stress response activator, translocated to the nucleus upon exposure to methyl methanesulfonate, confirming the ROS response.
Conclusions:
- DNA damage induces a generalized increase in intracellular ROS.
- This ROS increase is likely a key component of cellular stress signaling pathways.
- Further research can elucidate the specific signaling roles of DNA damage-induced ROS.
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