Hydrogen peroxide sensitivity connects the activity of COX5A and NPR3 to the regulation of YAP1 expression
Sarah Takallou1,2, Maryam Hajikarimlou1,2, Mustafa Al-Gafari1,2
1Ottawa Institute of Systems Biology, University of Ottawa, Ottawa, Ontario, Canada.
Abstract:
Reactive oxygen species (ROS) are among the most severe types of cellular stressors with the ability to damage essential cellular biomolecules. Excess levels of ROS are correlated with multiple pathophysiological conditions including neurodegeneration, diabetes, atherosclerosis, and cancer. Failure to regulate the severely imbalanced levels of ROS can ultimately lead to cell death, highlighting the importance of investigating the molecular mechanisms involved in the detoxification procedures that counteract the effects of these compounds in living organisms. One of the most abundant forms of ROS is H2 O2 , mainly produced by the electron transport chain in the mitochondria. Numerous genes have been identified as essential to the process of cellular detoxification. Yeast YAP1, which is homologous to mammalian AP-1 type transcriptional factors, has a key role in oxidative detoxification by upregulating the expression of antioxidant genes in yeast. The current study reveals novel functions for COX5A and NPR3 in H2 O2 -induced stress by demonstrating that their deletions result in a sensitive phenotype. Our follow-up investigations indicate that COX5A and NPR3 regulate the expression of YAP1 through an alternative mode of translation initiation. These novel gene functions expand our understanding of the regulation of gene expression and defense mechanism of yeast against oxidative stress.
Insights
This study identifies novel roles for COX5A and NPR3 in yeast
Area of Science:
- Cellular biology
- Molecular biology
- Biochemistry
Background:
- Reactive oxygen species (ROS) are critical cellular stressors that can damage biomolecules.
- Imbalanced ROS levels are linked to diseases like cancer and neurodegeneration.
- Hydrogen peroxide (H2O2) is a major ROS, often produced by mitochondria.
Purpose of the Study:
- To investigate the molecular mechanisms of cellular detoxification against H2O2-induced stress.
- To identify novel genes involved in yeast's oxidative stress response.
- To elucidate the regulatory pathways of antioxidant gene expression.
Main Methods:
- Yeast genetics and molecular biology techniques.
- Analysis of gene deletion phenotypes under H2O2 stress.
- Investigation of gene expression regulation via alternative translation initiation.
Main Results:
- Deletion of COX5A and NPR3 genes resulted in sensitivity to H2O2 stress.
- COX5A and NPR3 were found to regulate YAP1 expression.
- This regulation occurs through an alternative mode of translation initiation.
Conclusions:
- COX5A and NPR3 play previously unrecognized roles in yeast's defense against H2O2.
- These findings reveal a novel mechanism for regulating gene expression in response to oxidative stress.
- The study expands understanding of cellular detoxification and antioxidant defense systems.
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