Oxidative DNA damage causes premature senescence in mouse embryonic fibroblasts deficient for Krüppel-like factor 4
Changchang Liu1, Stephen La Rosa1,2, Engda G Hagos1
1Department of Biology, Colgate University, Hamilton, New York.
Abstract:
Krüppel-like factor 4 (KLF4) is a zinc-finger-containing transcription factor with tumor suppressor activity in various cancer types. Cells that sustain double strand breaks (DSBs) in their DNA due to high levels of reactive oxygen species (ROS) can develop genomic instability, which can result in cancer formation. One protective response to increased levels of ROS is the induction of cellular senescence. Recently, we found that mouse embryonic fibroblasts (MEFs) null for Klf4 are genetically unstable, as evidenced by the presence of DNA DSBs. However, it is yet unknown whether KLF4 is involved in regulating oxidative stress-induced DNA damage. Therefore, we sought to determine the mechanisms by which ROS induce genomic instability in Klf4-deficient MEFs. With SA-β-Gal staining, we show that Klf4(-/-) MEFs enter senescence earlier than Klf4(+/+) MEFs, and western blot shows accumulation of p21 and p53 with increasing passages. In addition, immunostaining against γ-H2AX indicates that the increased level of DNA damage in Klf4(-/-) MEFs positively correlates with ROS accumulation. Consistent with ROS as a source of DSB in Klf4(-/-) MEFs, treatment with NAC, reduces the accumulation of DNA damage. Our RT-PCR result demonstrates that Klf4(-/-) MEFs have decreased expression of the antioxidant gene, Gsta4. The downregulation of the Gsta4 correlates with significant levels of ROS accumulation, as shown by DCFDA and FACS analysis, and thus the oxidative stress-induced premature senescence. Together these findings suggest a mechanism by which KLF4 protects against DNA damage and oxidative stress at least in part through the regulation of Gsta4 and likely related genes.
Insights
Krüppel-like factor 4 (KLF4) deficiency leads to increased DNA damage and premature senescence in cells due to oxidative stress. KLF4 regulates the antioxidant gene Gsta4, protecting against reactive oxygen species (ROS) accumulation.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- Krüppel-like factor 4 (KLF4) is a transcription factor with tumor suppressor roles.
- Genomic instability, often caused by DNA double-strand breaks (DSBs) from reactive oxygen species (ROS), can lead to cancer.
- Cellular senescence is a protective response to ROS-induced DNA damage.
Purpose of the Study:
- To investigate the role of KLF4 in regulating oxidative stress-induced DNA damage and genomic instability.
- To elucidate the mechanisms by which ROS induce genomic instability in KLF4-deficient cells.
Main Methods:
- SA-β-Gal staining to assess senescence.
- Western blot to detect p53 and p21 protein levels.
- Immunostaining for γ-H2AX to quantify DNA damage.
- ROS detection using DCFDA and FACS analysis.
- RT-PCR to analyze Gsta4 gene expression.
Main Results:
- Klf4-deficient MEFs exhibit premature senescence and increased DNA damage.
- DNA damage levels correlate positively with ROS accumulation in Klf4(-/-) MEFs.
- N-acetylcysteine (NAC) treatment reduces DNA damage, confirming ROS involvement.
- Klf4 deficiency leads to decreased expression of the antioxidant gene Gsta4.
- Downregulation of Gsta4 correlates with ROS accumulation and oxidative stress-induced senescence.
Conclusions:
- KLF4 plays a crucial role in protecting cells against DNA damage and oxidative stress.
- KLF4 likely exerts its protective effect by regulating the antioxidant gene Gsta4 and potentially other related genes.
- These findings reveal a novel mechanism linking KLF4, oxidative stress, and genomic stability.
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