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The role of p53 in the response to mitotic spindle damage
1Biomedical Research Centre, Ninewells Hospital and Medical School, University of Dundee, Scotland, UK.
Abstract:
The p53 tumour suppressor protein has defined roles in G1/S and G2/M cell cycle checkpoints in response to a range of cellular stresses including DNA damage, dominant oncogene expression, hypoxia, metabolic changes and viral infection. In addition to these responses, p53 can also be activated when damage occurs to the mitotic spindle. Initially, spindle damage activates a p53-independent checkpoint which functions at the metaphase-anaphase transition and prevents cells from progressing through mitosis until the completion of spindle formation. Cells eventually escape from this block (a process termed 'mitotic slippage'), and an aberrant mitosis ensues in which sister chromatids fail to segregate properly. After a delay period, p53 responds to this mitotic failure by instituting a G1-like growth arrest, with an intact nucleus containing 4N DNA, but without the cells undergoing division. Cells lacking wild-type p53 are still able to arrest transiently at mitosis, and also fail to undergo division, underscoring that the delay in mitosis is p53-independent. However, these cells are not prevented from re-entering the cell cycle and can reduplicate their DNA unchecked, leading to polyploidy. Additionally, p53-null cells which experience spindle failure often show the appearance of micronuclei arising from poorly segregated chromosomes which have decondensed and been enclosed in a nuclear envelope. The ability of p53 to prevent their formation suggests an additional G2 involvement which prevents nuclear breakdown prior to mitosis. The molecular mechanism by which p53 is able to sense mitotic failure is still unknown, but may be linked to the ability of p53 to regulate duplication of the centrosome, the organelle which nucleates spindle formation.
Insights
The p53 tumor suppressor protein halts cell division after mitotic errors, preventing polyploidy and micronuclei formation. Cells lacking p53 can re-enter the cell cycle unchecked, leading to genomic instability.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- The p53 protein is a crucial tumor suppressor involved in cell cycle checkpoints.
- p53 responds to various cellular stresses, including DNA damage and hypoxia.
- p53 also plays a role in the cellular response to mitotic spindle damage.
Purpose of the Study:
- To investigate the role of p53 in response to mitotic spindle damage and subsequent cell cycle events.
- To understand how p53 prevents genomic instability after aberrant mitosis.
Main Methods:
- The study likely involved cell-based assays examining cell cycle progression and DNA content.
- Analysis of p53-dependent and p53-independent cellular responses to spindle damage.
- Observation of polyploidy and micronuclei formation in p53-null cells.
Main Results:
- Spindle damage initially triggers a p53-independent checkpoint at the metaphase-anaphase transition.
- Cells eventually undergo mitotic slippage, leading to aberrant mitosis and sister chromatid mis-segregation.
- p53 activation results in a G1-like growth arrest after mitotic failure, preventing further cell cycle progression.
- p53-null cells fail to prevent re-entry into the cell cycle, leading to polyploidy and micronuclei formation.
Conclusions:
- p53 is essential for preventing genomic instability following mitotic errors.
- p53's role extends beyond DNA damage to sensing and responding to mitotic failure.
- The mechanism by which p53 senses mitotic failure may involve regulation of centrosome duplication.