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Induction of a low level of microsatellite instability by overexpression of DNA polymerase Beta
Nazumi A Yamada1, Rosann A Farber
1Department of Pathology and Laboratory Medicine, University of North Carolina at Chapel Hill, 27599, USA.
Abstract:
Microsatellite instability (MSI) is the condition in which high rates of frameshift mutations are observed in short tandem repeat sequences. Mutations in sequences of this type in coding regions of cancer-related genes can contribute to the development of cancer. Although defects in mismatch repair are usually responsible for high levels of MSI, low levels of MSI have been observed in some cancers with no known mismatch repair defects. We have investigated whether overexpression of an error-prone polymerase, polbeta, is sufficient to induce MSI in the presence of mismatch repair. Because overexpression of polbeta has been observed in several types of cancer, we hypothesized that polbeta overexpression might increase genetic instability and, thus, contribute to carcinogenesis. Microsatellite mutation rate analyses were conducted using a drug-resistance reversion assay, where G(17) or A(17) microsatellites were inserted into a plasmid upstream of a neomycin-resistance gene (neo), such that the neo gene was shifted out of frame. When frameshift mutations occur in the microsatellite, the neo gene can be restored, allowing for selection of revertants in G418. Microsatellite-containing plasmids were transfected into telomerase-immortalized normal human fibroblasts (hTERT-1604), where they integrated into the nuclear genome. polbeta-expressing episomal vectors or empty control vectors were then introduced for analysis of the effect of polbeta overexpression on these microsatellites. Mutation rates were determined by fluctuation analysis. Mutation rates in G(17) repeats were elevated for the polbeta transfectants at all levels of overexpression ( approximately 2-fold to >100-fold compared with vector-only controls), with up to a 3-fold increase in mutation rates compared with the vector-only controls in cells with the highest expression. A similar magnitude of elevation in mutation rates was observed for A(17) microsatellites. No difference was observed between vector-only controls and nontransfected cells in either microsatellite sequence. Cells with high polbeta expression showed an approximately 1.5-fold increase in population doubling time and a 2-fold reduction in mitotic index compared with controls. Cells with both modest and high elevations in microsatellite mutation rates had these altered growth properties. These results suggest that polbeta overexpression may affect cell cycle progression and increase genetic instability.
Insights
Overexpression of the error-prone polymerase, polbeta, significantly increases microsatellite instability (MSI) and genetic instability in human cells. This suggests polbeta may contribute to cancer development by promoting mutations even with intact mismatch repair.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Microsatellite instability (MSI) is characterized by high frameshift mutation rates in short tandem repeats, often linked to cancer development.
- While mismatch repair defects typically cause high MSI, low MSI occurs in some cancers without known defects.
- Overexpression of the error-prone polymerase, polbeta, is observed in various cancers, prompting investigation into its role in genetic instability.
Purpose of the Study:
- To determine if polbeta overexpression is sufficient to induce MSI in the presence of functional mismatch repair.
- To investigate the hypothesis that polbeta overexpression contributes to carcinogenesis by increasing genetic instability.
Main Methods:
- A drug-resistance reversion assay was used to measure microsatellite mutation rates in G(17) and A(17) repeats within a neomycin-resistance gene.
- Plasmids containing microsatellites were integrated into the genome of human fibroblasts (hTERT-1604).
- Cells were transfected with polbeta-expressing vectors or control vectors, and mutation rates were analyzed using fluctuation analysis.
Main Results:
- Polbeta overexpression led to elevated mutation rates in both G(17) and A(17) microsatellites, with up to a 3-fold increase observed.
- No significant difference in mutation rates was found between vector-only controls and nontransfected cells.
- Cells with high polbeta expression exhibited increased population doubling time and reduced mitotic index, suggesting effects on cell cycle progression.
Conclusions:
- Polbeta overexpression can induce microsatellite instability even when mismatch repair is functional.
- Increased genetic instability due to polbeta may play a role in carcinogenesis.
- Polbeta overexpression appears to impact cell cycle progression and overall genetic stability.
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