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Defective control of mitotic and post-mitotic checkpoints in poly(ADP-ribose) polymerase-1(-/-) fibroblasts after
Sabina S Halappanavar1, Girish M Shah
1Laboratory for Skin Cancer Research, CHUL Research Center (CHUQ), Faculty of Medicine, Laval University, Sainte-Foy, Quebec, Canada.
Abstract:
Poly(ADP-ribose) polymerase-1 (PARP), a DNA damage-responsive nuclear enzyme present in higher eukaryotes, is well-known for its roles in protecting the genome after DNA damage. However, even without exogenous DNA damage, PARP may play a role in stabilizing the genome because cells or mice deficient in PARP exhibit various signs of genomic instability, such as tetraploidy, aneuploidy, chromosomal abnormalities and susceptibility to spontaneous carcinogenesis. Normally, cell cycle checkpoints ensure elimination of cells with genomic abnormalities. Therefore, we examined efficiency of mitotic and post-mitotic checkpoints in PARP-/- and PARP+/+ mouse embryonic fibroblasts treated with mitotic spindle disrupting agent colcemid. PARP+/+ cells, like most mammalian cells, eventually escaped from spindle disruption-induced mitotic checkpoint arrest by 60 h. In contrast, PARP-/- cells rapidly escaped from mitotic arrest within 24 h by downregulation of cyclin B1/CDK-1 kinase activity. After escaping from mitotic arrest; both the PARP genotypes arrive in G1 tetraploid state, where they face post-mitotic checkpoints which either induce apoptosis or prevent DNA endoreduplication. While all the G1 tetraploid PARP+/+ cells were eliminated by apoptosis, the majority of the G1 tetraploid PARP-/- cells became polyploid by resisting apoptosis and carrying out DNA endoreduplication. Introduction of PARP in PARP-/- fibroblasts partially increased the stringency of mitotic checkpoint arrest and fully restored susceptibility to G1 tetraploidy checkpoint-induced apoptosis; and thus prevented formation of polyploid cells. Our results suggest that PARP may serve as a guardian angel of the genome even without exogenous DNA damage through its role in mitotic and post-mitotic G1 tetraploidy checkpoints.
Insights
Poly(ADP-ribose) polymerase-1 (PARP) stabilizes the genome by enforcing cell cycle checkpoints. PARP deficiency leads to genomic instability and polyploidy due to checkpoint failures.
Area of Science:
- Genetics
- Molecular Biology
- Cell Biology
Background:
- Poly(ADP-ribose) polymerase-1 (PARP) is a nuclear enzyme crucial for DNA damage response.
- PARP deficiency is linked to genomic instability, including tetraploidy and aneuploidy, even without external DNA damage.
- Cell cycle checkpoints normally eliminate cells with genomic abnormalities.
Purpose of the Study:
- To investigate the role of PARP in maintaining genomic stability through mitotic and post-mitotic checkpoints.
- To compare checkpoint efficiency in PARP-deficient (PARP-/-) and wild-type (PARP+/+) mouse embryonic fibroblasts.
Main Methods:
- Mouse embryonic fibroblasts (PARP-/- and PARP+/+) were treated with colcemid, a mitotic spindle disrupting agent.
- Mitotic arrest duration and cell fate (apoptosis, endoreduplication) were analyzed.
- The effect of reintroducing PARP into PARP-/- cells was assessed.
Main Results:
- PARP-/- cells escaped mitotic arrest faster than PARP+/+ cells by downregulating cyclin B1/CDK-1 activity.
- Both genotypes reached a tetraploid G1 state, but PARP-/- cells underwent DNA endoreduplication, leading to polyploidy.
- PARP reintroduction restored checkpoint stringency and apoptosis in tetraploid cells, preventing polyploidy.
Conclusions:
- PARP plays a critical role in genomic guardianship, even without exogenous DNA damage, by ensuring proper mitotic and G1 tetraploidy checkpoint function.
- PARP deficiency compromises these checkpoints, resulting in genomic instability and polyploidy.
- PARP acts as a guardian of the genome by preventing the propagation of cells with chromosomal abnormalities.
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