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Published on: May 29, 2015
Functional analysis of the mismatch repair system in bladder cancer
T Thykjaer1, M Christensen, A B Clark
1Department of Clinical Biochemistry, Skejby University Hospital, 8200 Aarhus N, Denmark.
Abstract:
In bladder cancer the observed microsatellite instability indicates that mismatch repair deficiency could be a frequently involved factor in bladder cancer progression. To investigate this hypothesis we analysed extracts of seven bladder cancer cell lines and, as a novel approach, five clinical cancer samples for mismatch repair activity. We found that one cell line (T24) and three of the clinical samples had a reduced repair capacity, measured to approximately 20% or less. The T24 cell extract was unable to repair a G-G mismatch and showed reduced repair of a 2-base loop, consistent with diminished function of the MSH2-MSH6 heterodimer. The functional assay was combined with measurement for mutation frequency, microsatellite analysis, sequencing, MTT assay, immunohistochemical analysis and RT-PCR analysis of the mismatch repair genes MSH2, MSH3, MSH6, PMS1, PMS2 and MLH1. A >7-fold relative increase in mutation frequency was observed for T24 compared to a bladder cancer cell line with a fully functional mismatch repair system. Neither microsatellite instability, loss of repair nor mismatch repair gene mutations were detected. However, RT-PCR analysis of mRNA levels did detect changes in the ratio of expression of the Mut S and Mut L homologues. The T24 cell line had the lowest MSH6 expression level of the cell lines tested. Identical RT-PCR analysis of seventeen clinical samples (normal urothelium, 7; pTa low stage, 5; and pT1-4 high stage, 5) indicated a significant change in the expression ratio between MSH3/MSH6 (P< 0.004), MSH2/MSH3 (P< 0.012) and PMS2/MLH1 P< 0.005, in high stage bladder tumours compared to normal urothelium and low stage tumours. Collectively, the data suggest that imbalanced expression of mismatch repair genes could lead to partial loss of mismatch repair activity that is associated with invasive bladder cancer.
Insights
Microsatellite instability in bladder cancer suggests mismatch repair deficiency. This study found imbalanced mismatch repair gene expression in high-stage tumors, potentially driving invasive bladder cancer progression.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Microsatellite instability (MSI) is observed in bladder cancer, hinting at a role for mismatch repair (MMR) deficiency in tumor progression.
- Investigating MMR activity in bladder cancer cell lines and clinical samples is crucial for understanding its involvement in disease development.
Purpose of the Study:
- To analyze MMR activity and gene expression in bladder cancer cell lines and clinical samples.
- To determine the relationship between MMR gene expression imbalance and bladder cancer stage.
Main Methods:
- MMR activity was assessed using functional assays in seven bladder cancer cell lines and five clinical samples.
- Mutation frequency, microsatellite analysis, sequencing, MTT assay, immunohistochemistry, and RT-PCR were employed to analyze MMR genes (MSH2, MSH3, MSH6, PMS1, PMS2, MLH1).
- RT-PCR analysis of mRNA levels was performed on 17 clinical samples (normal, low-stage, and high-stage bladder tumors).
Main Results:
- Reduced MMR capacity (≤20%) was observed in one cell line (T24) and three clinical samples.
- The T24 cell line exhibited a >7-fold increase in mutation frequency and diminished repair of specific mismatches, linked to MSH2-MSH6 heterodimer dysfunction.
- Significant changes in the expression ratios of MMR genes (MSH3/MSH6, MSH2/MSH3, PMS2/MLH1) were found in high-stage bladder tumors compared to normal and low-stage tumors.
Conclusions:
- Imbalanced expression of mismatch repair genes is associated with partial loss of MMR activity.
- This MMR deficiency may contribute to the progression of invasive bladder cancer.
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