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Recurrent micronucleation through cell cycle progression in the presence of microtubule inhibitors
Yuji Nakayama1, Narumi Uno, Katsuhiro Uno
1Division of Functional Genomics, Research Center for Bioscience and Technology, Tottori University.
Abstract:
Although most cell lines undergo mitotic arrest after prolonged exposure to microtubule inhibitors, some cells subsequently exit this state and become tetraploid. Among these cells, limited numbers of rodent cells are known to undergo multinucleation to generate multiple small independent nuclei, or micronuclei by prolonged colcemid treatment. Micronuclei are thought to be formed when cells shift to a pseudo G1 phase, during which the onset of chromosomal decondensation allows individual chromosomes distributed throughout the cell to serve as sites for the reassembly of nuclear membranes. To better define this process, we used long-term live cell imaging to observe micronucleation induced in mouse A9 cells by treating with the microtubule inhibitor colcemid. Our observations confirm that nuclear envelope formation occurs when mitotic-arrested cells shift to a pseudo G1 phase and adopt a tetraploid state, accompanied by chromosome decondensation. Unexpectedly, only a small number of cells containing large micronuclei were formed. We found that tetraploid micronucleated cells proceeded through an additional cell cycle, shifting to a pseudo G1 phase and forming octoploid micronucleated cells that were smaller and more numerous compared with the tetraploid micronucleated cells. Our data suggest that micronucleation occur when cells shift from mitotic arrest to a pseudo G1 phase, and demonstrate that, rather than being a single event, micronucleation is an inducible recurrent process that leads to the formation of progressively smaller and more numerous micronuclei.
Insights
Micronucleation, the formation of multiple nuclei, occurs when cells exit mitotic arrest and enter a pseudo G1 phase. This process is recurrent, generating progressively smaller and more numerous micronuclei.
Area of Science:
- Cell Biology
- Genetics
Background:
- Most cell lines arrest during mitosis when exposed to microtubule inhibitors.
- Some cells exit mitotic arrest, becoming tetraploid and potentially multinucleated.
Purpose of the Study:
- To investigate the process of micronucleation in mouse A9 cells induced by colcemid.
- To define the cellular events leading to micronuclei formation and their recurrence.
Main Methods:
- Long-term live cell imaging of mouse A9 cells treated with colcemid.
- Observation of cellular changes during mitotic arrest, tetraploidization, and micronucleation.
Main Results:
- Nuclear envelope formation and micronuclei generation occur during a pseudo G1 phase after mitotic arrest.
- Tetraploid cells formed smaller, more numerous micronuclei after an additional cell cycle.
- Micronucleation was identified as a recurrent, inducible process.
Conclusions:
- Micronucleation is initiated by a shift from mitotic arrest to a pseudo G1 phase.
- The process is recurrent, leading to the progressive formation of smaller and more numerous micronuclei.
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