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Involvement of mammalian MLH1 in the apoptotic response to peroxide-induced oxidative stress
R A Hardman1, C A Afshari, J C Barrett
1Curriculum in Toxicology, University of North Carolina, Chapel Hill 27514, USA.
Abstract:
MLH1 is an integral part of the mismatch repair complex, and the loss of this protein is associated with the acquisition of a mutator phenotype, microsatellite instability, and a predisposition to cancer. Deficiencies in the mismatch repair complex, including the loss of MLH1, result in elevated resistance to specific inducers of DNA damage, yet the mechanisms involved in this DNA-damage resistance are largely unknown. Abnormal cellular responses to DNA damage can lead to the selection of cells with a greater propensity for neoplastic transformation and might also reduce the effectiveness of certain chemotherapeutic drugs. It is therefore important to identify agents that provide selective pressure for growth of MLH1-deficient cells and to characterize further the pathways involved. In this study, we show that both human epithelial and mouse embryo fibroblast cell lines lacking the MLH1 protein are more resistant to two inducers of oxidative stress, hydrogen peroxide and tert-butyl hydroperoxide. Our analyses suggest that the observed differences in cellular viability are mediated primarily through apoptotic pathways and not through deficiencies in cell cycle checkpoint controls. Additional characterization of the signaling pathways for hydrogen peroxide-induced apoptosis in MLH1-proficient cells demonstrates the involvement of increased mitochondrial permeability, the release of cytochrome c, and caspase 3 activation. Together, our data indicate that cells lacking MLH1 may possess a selective growth advantage under oxidatively stressed conditions via the disregulation of apoptosis, possibly involving the mitochondria.
Insights
Cells lacking MLH1 (mismatch repair protein) show increased resistance to oxidative stress. This resistance is linked to apoptosis pathway dysregulation, suggesting a potential growth advantage for MLH1-deficient cells under oxidative conditions.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- MLH1 protein loss is linked to cancer predisposition and microsatellite instability.
- Mechanisms of DNA damage resistance in MLH1-deficient cells are poorly understood.
- Understanding these mechanisms is crucial for cancer therapy and identifying selective growth agents.
Purpose of the Study:
- To investigate the resistance of MLH1-deficient cells to oxidative stress.
- To elucidate the cellular pathways involved in this resistance.
- To identify potential therapeutic targets and understand cancer development.
Main Methods:
- Utilized human epithelial and mouse embryo fibroblast cell lines lacking MLH1.
- Exposed cells to oxidative stress inducers: hydrogen peroxide and tert-butyl hydroperoxide.
- Analyzed cellular viability, apoptotic pathways, and cell cycle checkpoint controls.
Main Results:
- MLH1-deficient cells exhibited enhanced resistance to oxidative stress agents.
- Resistance was primarily mediated by apoptotic pathways, not cell cycle checkpoints.
- In MLH1-proficient cells, hydrogen peroxide-induced apoptosis involved mitochondrial pathways, cytochrome c release, and caspase 3 activation.
Conclusions:
- MLH1-deficient cells may have a selective growth advantage under oxidative stress.
- Apoptosis regulation, potentially involving mitochondria, is key to this advantage.
- Further characterization of these pathways is warranted for therapeutic strategies.