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.

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.

Related Concept Videos

DNA Damage can Stall the Cell Cycle02:36

DNA Damage can Stall the Cell Cycle

In response to DNA damage, cells can pause the cell cycle to assess and repair the breaks. However, the cell must check the DNA at certain critical stages during the cell cycle. If the cell cycle pauses before DNA replication, the cells will contain twice the amount of DNA. On the other hand, if cells arrest after DNA replication but before mitosis, they will contain four times the normal amount of DNA. With a host of specialized proteins at their disposal,cells must use the right protein at...
DNA Damage Can Stall the Cell Cycle02:36

DNA Damage Can Stall the Cell Cycle

In response to DNA damage, cells can pause the cell cycle to assess and repair the breaks. However, the cell must check the DNA at certain critical stages during the cell cycle. If the cell cycle pauses before DNA replication, the cells will contain twice the amount of DNA. On the other hand, if cells arrest after DNA replication but before mitosis, they will contain four times the normal amount of DNA. With a host of specialized proteins at their disposal,cells must use the right protein at...
Nucleotide Excision Repair01:38

Nucleotide Excision Repair

DNA Distortion and Damage
Cells are regularly exposed to mutagens—factors in the environment that can damage DNA and generate mutations. UV radiation is one of the most common mutagens and is estimated to introduce a significant number of changes in DNA. These include bends or kinks in the structure, which can block DNA replication or transcription. If these errors are not fixed, the damage can cause mutations, which in turn can result in cancer or disease depending on which sequences are...
Overview of DNA Repair02:25

Overview of DNA Repair

In order to be passed through generations, genomic DNA must be undamaged and error-free. However, every day, DNA in a cell undergoes several thousand to a million damaging events by natural causes and external factors. Ionizing radiation such as UV rays, free radicals produced during cellular respiration, and hydrolytic damage from metabolic reactions can alter the structure of DNA. Damages caused include single-base alteration, base dimerization, chain breaks, and cross-linkage.
Chemically...