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Published on: June 23, 2023
DNA damage in mitosis: SOD1 delays anaphase onset
1Department of Biology, University of Crete, Heraklion, Greece.
Abstract:
Unrepaired DNA double strand breaks (DSBs) can lead to genomic instability, carcinogenesis, or cell death; however, mitotic cells do not exhibit a DNA damage checkpoint delay and do not repair DSBs until the next cell cycle. Instead, DSBs can delay anaphase through the mitotic spindle checkpoint by an incompletely understood mechanism. Li et al. now show that, in human mitotic cells with damaged DNA, superoxide dismutase 1 inhibits protein phosphatase 2a, which dephosphorylates kinetochore proteins to silence the spindle checkpoint, leading to persistent spindle checkpoint activation and delayed anaphase onset. Here, the biological significance of these findings and open questions are discussed.
Insights
DNA double strand breaks (DSBs) in dividing cells delay anaphase by preventing the silencing of the spindle checkpoint. This occurs when superoxide dismutase 1 inhibits protein phosphatase 2a, impacting kinetochore proteins.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Unrepaired DNA double-strand breaks (DSBs) pose risks including genomic instability and cancer.
- Mitotic cells typically delay DSB repair until the next cell cycle.
- DSBs can trigger anaphase delay via the mitotic spindle checkpoint through poorly understood mechanisms.
Purpose of the Study:
- To elucidate the mechanism by which DNA double-strand breaks delay anaphase onset in human mitotic cells.
- To identify key molecular players involved in regulating the spindle checkpoint in response to DNA damage during mitosis.
Main Methods:
- Investigated the role of superoxide dismutase 1 (SOD1) and protein phosphatase 2a (PP2A) in DSB-induced mitotic delay.
- Examined the effects of SOD1 inhibition on PP2A activity and kinetochore protein phosphorylation.
- Assessed the impact on spindle checkpoint activation and anaphase progression in human cells.
Main Results:
- In human mitotic cells with DSBs, SOD1 was found to inhibit PP2A.
- This inhibition prevented the dephosphorylation of kinetochore proteins, which is necessary for silencing the spindle checkpoint.
- Consequently, persistent spindle checkpoint activation led to a significant delay in anaphase onset.
Conclusions:
- The study reveals a novel mechanism involving SOD1 and PP2A in the regulation of the spindle checkpoint during DNA damage in mitosis.
- This pathway is crucial for delaying anaphase, providing time for DNA repair or preventing mitotic catastrophe.
- Further research is needed to fully understand the biological significance and therapeutic implications of this pathway.
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