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Updated: Jul 13, 2026

Two- and Three-Dimensional Live Cell Imaging of DNA Damage Response Proteins
Published on: September 28, 2012
p53 activation in response to mitotic spindle damage requires signaling via BubR1-mediated phosphorylation
Geun-Hyoung Ha1, Kwan-Hyuck Baek, Hyun-Soo Kim
1Department of Molecular Cell Biology, Center for Molecular Medicine, Samsung Biomedical Research Institute, Sungkyunkwan University School of Medicine, Suwon, Korea.
Abstract:
The mitotic spindle checkpoint plays a crucial role in regulating accurate chromosome segregation and preventing the adaptation of multiploid progeny cells. Recent reports have indicated that the induction of p53 by mitotic checkpoint activation is essential for protecting cells from abnormal chromosome ploidization caused by mitotic failure. However, although studies have shown that p53 deficiencies arrest mitosis, compromise apoptosis, and may cause profound aneuploidy, the molecular mechanisms leading to p53 induction following mitotic checkpoint activation remain unknown. Here, we show that the BubR1 mitotic checkpoint kinase interacts with p53 both in vitro and in vivo, with higher levels of interaction in mitotic cells. This interaction contributes to p53 phosphorylation. Silencing of BubR1 expression reduces the phosphorylation and stability of p53, whereas exogenous introduction of BubR1 proteins into BubR1-depleted cells recovers p53 stability. In addition, inhibition of BubR1 expression in the presence of a microtubule inhibitor accelerates chromosomal instability and polyploidy in p53-null cells. These results collectively suggest that p53 activation in response to mitotic spindle damage requires signaling via BubR1-mediated phosphorylation.
Insights
The BubR1 kinase phosphorylates p53, stabilizing it during the mitotic spindle checkpoint. This BubR1-mediated pathway is crucial for preventing polyploidy and aneuploidy in cells experiencing mitotic failure.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- The mitotic spindle checkpoint is vital for accurate chromosome segregation.
- p53 induction by this checkpoint protects cells from abnormal ploidy.
- Molecular mechanisms linking checkpoint activation to p53 induction are unclear.
Purpose of the Study:
- To elucidate the molecular mechanisms of p53 induction following mitotic checkpoint activation.
- To investigate the role of BubR1 in p53 regulation during mitosis.
Main Methods:
- In vitro and in vivo interaction studies between BubR1 and p53.
- BubR1 gene silencing and protein reintroduction experiments.
- Analysis of p53 phosphorylation and stability.
- Assessment of chromosomal instability and polyploidy in p53-null cells.
Main Results:
- BubR1 kinase interacts with p53, promoting its phosphorylation.
- BubR1 depletion reduces p53 phosphorylation and stability.
- Restoring BubR1 rescues p53 stability.
- BubR1 inhibition exacerbates chromosomal instability and polyploidy in p53-null cells.
Conclusions:
- p53 activation during mitotic spindle damage relies on BubR1-mediated phosphorylation.
- BubR1 is a key regulator of p53 stability and function in response to mitotic stress.
- This pathway is essential for maintaining genomic stability.
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