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Published on: April 13, 2015
Inactivation of RB1, CDKN2A, and TP53 have distinct effects on genomic stability at side-by-side comparison in
Natalie Andersson1, Karim H Saba1, Linda Magnusson1
1Division of Clinical Genetics, Department of Laboratory Medicine, Lund University, Lund, Sweden.
Abstract:
Chromosomal instability is a common feature in malignant tumors. Previous studies have indicated that inactivation of the classical tumor suppressor genes RB1, CDKN2A, and TP53 may contribute to chromosomal aberrations in cancer by disrupting different aspects of the cell cycle and DNA damage checkpoint machinery. We performed a side-by-side comparison of how inactivation of each of these genes affected chromosomal stability in vitro. Using CRISPR-Cas9 technology, RB1, CDKN2A, and TP53 were independently knocked out in karyotypically normal immortalized cells, after which these cells were followed over time. Bulk RNA sequencing revealed a distinct phenotype with upregulation of pathways related to cell cycle control and proliferation in all three knockouts. Surprisingly, the RB1 and CDKN2A knocked out cell lines did not harbor more copy number aberrations than wild-type cells, despite culturing for months. The TP53-knocked out cells, in contrast, showed a massive amount of copy number alterations and saltatory evolution through whole genome duplication. This side-by-side comparison indicated that the effects on chromosomal stability from inactivation of RB1 and CDKN2A are negligible compared to inactivation of TP53, under the same conditions in a nonstressful environment, even though partly overlapping regulatory pathways are affected. Our data suggest that loss of RB1 and CDKN2A alone is not enough to trigger surviving detectable aneuploid clones while inactivation of TP53 on its own caused massive CIN leading to saltatory clonal evolution in vitro and clonal selection.
Insights
Loss of RB1 and CDKN2A tumor suppressors has minimal impact on chromosomal stability. In contrast, TP53 inactivation causes significant chromosomal instability and rapid evolution in cancer cells.
Area of Science:
- Oncology
- Genetics
- Cell Biology
Background:
- Chromosomal instability (CIN) is a hallmark of cancer.
- Tumor suppressor genes RB1, CDKN2A, and TP53 are critical for cell cycle control and DNA repair.
- Inactivation of these genes is hypothesized to drive CIN and cancer progression.
Purpose of the Study:
- To directly compare the impact of inactivating RB1, CDKN2A, and TP53 on chromosomal stability in vitro.
- To elucidate the distinct roles of these key tumor suppressors in maintaining genomic integrity.
Main Methods:
- CRISPR-Cas9 technology was used to independently knockout RB1, CDKN2A, and TP53 in normal immortalized cells.
- Cells were cultured over time and analyzed for chromosomal aberrations.
- Bulk RNA sequencing was performed to assess pathway changes.
Main Results:
- All three knockouts showed upregulated cell cycle and proliferation pathways.
- RB1 and CDKN2A knockouts did not exhibit increased copy number aberrations compared to wild-type cells.
- TP53 knockout cells displayed massive copy number alterations and whole genome duplication, indicating saltatory evolution.
Conclusions:
- Loss of RB1 or CDKN2A alone does not significantly induce chromosomal instability in a non-stressful environment.
- TP53 inactivation is a potent driver of chromosomal instability (CIN) and rapid clonal evolution in vitro.
- TP53 plays a critical role in preventing aneuploidy and maintaining genomic stability, independent of RB1 and CDKN2A.
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