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Studying Cell Cycle-regulated Gene Expression by Two Complementary Cell Synchronization Protocols
Published on: June 6, 2017
DEK over-expression promotes mitotic defects and micronucleus formation
Marie C Matrka1, Robert F Hennigan1, Ferdinand Kappes2,3
1a Cancer and Blood Diseases Institute; Cincinnati Children's Hospital Medical Center and University of Cincinnati ; Cincinnati , OH USA.
Abstract:
The DEK gene encodes a nuclear protein that binds chromatin and is involved in various fundamental nuclear processes including transcription, RNA splicing, DNA replication and DNA repair. Several cancer types characteristically over-express DEK at the earliest stages of transformation. In order to explore relevant mechanisms whereby DEK supports oncogenicity, we utilized cancer databases to identify gene transcripts whose expression patterns are tightly correlated with that of DEK. We identified an enrichment of genes involved in mitosis and thus investigated the regulation and possible function of DEK in cell division. Immunofluorescence analyses revealed that DEK dissociates from DNA in early prophase and re-associates with DNA during telophase in human keratinocytes. Mitotic cell populations displayed a sharp reduction in DEK protein levels compared to the corresponding interphase population, suggesting DEK may be degraded or otherwise removed from the cell prior to mitosis. Interestingly, DEK overexpression stimulated its own aberrant association with chromatin throughout mitosis. Furthermore, DEK co-localized with anaphase bridges, chromosome fragments, and micronuclei, suggesting a specific association with mitotically defective chromosomes. We found that DEK over-expression in both non-transformed and transformed cells is sufficient to stimulate micronucleus formation. These data support a model wherein normal chromosomal clearance of DEK is required for maintenance of high fidelity cell division and chromosomal integrity. Therefore, the overexpression of DEK and its incomplete removal from mitotic chromosomes promotes genomic instability through the generation of genetically abnormal daughter cells. Consequently, DEK over-expression may be involved in the initial steps of developing oncogenic mutations in cells leading to cancer initiation.
Insights
Overexpression of the DEK gene, crucial for DNA repair and replication, disrupts cell division. Its abnormal presence during mitosis leads to genomic instability and may initiate cancer development.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- The DEK gene encodes a nuclear protein vital for DNA replication, repair, and transcription.
- DEK overexpression is observed in several early-stage cancers, suggesting a role in oncogenesis.
Purpose of the Study:
- To investigate the role of DEK in cell division and its association with cancer.
- To identify DEK-correlated genes involved in mitosis.
Main Methods:
- Utilized cancer databases to correlate DEK expression with other gene transcripts.
- Performed immunofluorescence analyses in human keratinocytes to track DEK localization during cell division.
- Assessed the impact of DEK overexpression on cell division and genomic integrity.
Main Results:
- DEK normally dissociates from DNA during prophase and re-associates during telophase.
- DEK protein levels decrease significantly before mitosis, but overexpression causes aberrant chromatin association.
- Overexpressed DEK co-localizes with mitotic errors like anaphase bridges and micronuclei, inducing their formation.
Conclusions:
- Normal clearance of DEK during mitosis is essential for maintaining chromosomal integrity and accurate cell division.
- DEK overexpression promotes genomic instability by leading to genetically abnormal daughter cells.
- Aberrant DEK activity may contribute to cancer initiation by causing oncogenic mutations.
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