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Published on: February 7, 2018
The in vivo gene expression signature of oxidative stress
Eun-Soo Han1, Florian L Muller, Viviana I Pérez
1Department of Biological Science, University of Tulsa, Tulsa, Oklahoma, USA.
Abstract:
How higher organisms respond to elevated oxidative stress in vivo is poorly understood. Therefore, we measured oxidative stress parameters and gene expression alterations (Affymetrix arrays) in the liver caused by elevated reactive oxygen species induced in vivo by diquat or by genetic ablation of the major antioxidant enzymes CuZn-superoxide dismutase (Sod1) and glutathione peroxidase-1 (Gpx1). Diquat (50 mg/kg) treatment resulted in a significant increase in oxidative damage within 3-6 h in wild-type mice without any lethality. In contrast, treatment of Sod1(-/-) or Gpx1(-/-) mice with a similar concentration of diquat resulted in a significant increase in oxidative damage within an hour of treatment and was lethal, i.e., these mice are extremely sensitive to the oxidative stress generated by diquat. The expression response to elevated oxidative stress in vivo does not involve an upregulation of classic antioxidant genes, although long-term oxidative stress in Sod1(-/-) mice leads to a significant upregulation of thiol antioxidants (e.g., Mt1, Srxn1, Gclc, Txnrd1), which appears to be mediated by the redox-sensitive transcription factor Nrf2. The main finding of our study is that the common response to elevated oxidative stress with diquat treatment in wild-type, Gpx1(-/-), and Sod1(-/-) mice and in untreated Sod1(-/-) mice is an upregulation of p53 target genes (p21, Gdf15, Plk3, Atf3, Trp53inp1, Ddit4, Gadd45a, Btg2, Ndrg1). A retrospective comparison with previous studies shows that induction of these p53 target genes is a conserved expression response to oxidative stress, in vivo and in vitro, in different species and different cells/organs.
Insights
Higher organisms
Area of Science:
- Molecular biology
- Toxicology
- Genetics
Background:
- Oxidative stress impacts cellular function and organismal health.
- Understanding in vivo responses to oxidative stress is crucial.
- Key antioxidant enzymes like CuZn-superoxide dismutase (Sod1) and glutathione peroxidase-1 (Gpx1) play vital roles.
Purpose of the Study:
- To investigate how higher organisms respond to elevated oxidative stress in vivo.
- To identify gene expression alterations in the liver due to induced reactive oxygen species.
- To compare responses in wild-type mice versus genetically modified mice lacking antioxidant enzymes.
Main Methods:
- Induction of oxidative stress using diquat in wild-type, Sod1(-/-), and Gpx1(-/-) mice.
- Measurement of oxidative stress parameters.
- Gene expression profiling using Affymetrix arrays.
Main Results:
- Sod1(-/-) and Gpx1(-/-) mice exhibit extreme sensitivity and lethality to diquat-induced oxidative stress.
- Elevated oxidative stress does not initially upregulate classic antioxidant genes.
- A conserved upregulation of p53 target genes is observed across different conditions and models.
Conclusions:
- The p53 pathway is a critical conserved response to oxidative stress in vivo and in vitro.
- Genetic deficiencies in antioxidant enzymes exacerbate oxidative stress sensitivity.
- Long-term oxidative stress can induce thiol antioxidants via Nrf2.

