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Establishment of Proliferative Tetraploid Cells from Nontransformed Human Fibroblasts
Published on: January 8, 2017
Tumor suppressor WARTS ensures genomic integrity by regulating both mitotic progression and G1 tetraploidy checkpoint
Shin-Ichi Iida1, Toru Hirota, Tetsuro Morisaki
1Department of Tumor Genetics and Biology, Graduate School of Medical Sciences, Kumamoto University, 1-1-1 Honjo, Kumamoto 860-8556, Japan.
Abstract:
Defects in chromosomes or mitotic spindles activate the spindle checkpoint, resulting in cell cycle arrest at prometaphase. The prolonged activation of spindle checkpoint generally leads to mitotic exit without segregation after a transient mitotic arrest and the consequent formation of tetraploid G(1) cells. These tetraploid cells are usually blocked to enter the subsequent S phase by the activation of p53/pRb pathway, which is referred to as the G(1) tetraploidy checkpoint. A human homologue of the Drosophila warts tumor suppressor, WARTS, is an evolutionarily conserved serine-threonine kinase and implicated in development of human tumors. We previously showed that WARTS plays a crucial role in controlling mitotic progression by forming a regulatory complex with zyxin, a regulator of actin filament assembly, on mitotic apparatus. However, when WARTS is activated during cell cycle and how the loss of WARTS function leads to tumorigenesis have not been elucidated. Here we show that WARTS is activated during mitosis in mammalian cells, and that overexpression of a kinase-inactive WARTS in Rat1 fibroblasts significantly induced mitotic delay. This delay resulted from prolonged activation of the spindle assembly checkpoint and was frequently followed by mitotic slippage and the development of tetraploidy. The resulting tetraploid cells then abrogated the G(1) tetraploidy checkpoint and entered S phase to achieve a DNA content of 8N. This impairment of G(1) tetraploidy checkpoint was caused as a consequence of failure to induce p53 expression by expressing a kinase-inactive WARTS. WARTS thus plays a critical role in maintenance of ploidy through its actions in both mitotic progression and the G(1) tetraploidy checkpoint.
Insights
WARTS kinase is crucial for maintaining cell ploidy by regulating mitotic progression and the G(1) tetraploidy checkpoint. Loss of WARTS function leads to mitotic errors, tetraploidy, and impaired p53 expression, contributing to tumorigenesis.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- Chromosome and spindle defects trigger the spindle checkpoint, causing cell cycle arrest.
- Prolonged spindle checkpoint activation can lead to tetraploidy and G(1) cell cycle arrest.
- WARTS, a serine-threonine kinase, is implicated in human tumor development and mitotic progression.
Purpose of the Study:
- To elucidate the cell cycle activation of WARTS.
- To investigate how WARTS loss contributes to tumorigenesis.
- To determine WARTS' role in maintaining genomic stability.
Main Methods:
- Overexpression of kinase-inactive WARTS in Rat1 fibroblasts.
- Analysis of mitotic delay, spindle assembly checkpoint activation, and mitotic slippage.
- Assessment of tetraploidy, G(1) tetraploidy checkpoint, and p53 expression.
Main Results:
- WARTS is activated during mitosis in mammalian cells.
- Kinase-inactive WARTS overexpression induced mitotic delay via prolonged spindle checkpoint activation.
- This led to mitotic slippage, tetraploidy, G(1) checkpoint abrogation, and failure to induce p53.
- Tetraploid cells achieved 8N DNA content due to impaired p53 induction.
Conclusions:
- WARTS plays a critical role in maintaining cell ploidy.
- WARTS functions in both mitotic progression and the G(1) tetraploidy checkpoint.
- Impaired WARTS function contributes to genomic instability and tumorigenesis.
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