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Updated: May 24, 2026

Imaging Mismatch Repair and Cellular Responses to DNA Damage in Bacillus subtilis
Published on: February 8, 2010
C-terminal fluorescent labeling impairs functionality of DNA mismatch repair proteins
Angela Brieger1, Guido Plotz, Inga Hinrichsen
1Department of Medicine I, University of Frankfurt/M., Frankfurt, Germany. a.brieger@em.uni-frankfurt.de
Abstract:
The human DNA mismatch repair (MMR) process is crucial to maintain the integrity of the genome and requires many different proteins which interact perfectly and coordinated. Germline mutations in MMR genes are responsible for the development of the hereditary form of colorectal cancer called Lynch syndrome. Various mutations mainly in two MMR proteins, MLH1 and MSH2, have been identified so far, whereas 55% are detected within MLH1, the essential component of the heterodimer MutLα (MLH1 and PMS2). Most of those MLH1 variants are pathogenic but the relevance of missense mutations often remains unclear. Many different recombinant systems are applied to filter out disease-associated proteins whereby fluorescent tagged proteins are frequently used. However, dye labeling might have deleterious effects on MutLα's functionality. Therefore, we analyzed the consequences of N- and C-terminal fluorescent labeling on expression level, cellular localization and MMR activity of MutLα. Besides significant influence of GFP- or Red-fusion on protein expression we detected incorrect shuttling of single expressed C-terminal GFP-tagged PMS2 into the nucleus and found that C-terminal dye labeling impaired MMR function of MutLα. In contrast, N-terminal tagged MutLαs retained correct functionality and can be recommended both for the analysis of cellular localization and MMR efficiency.
Insights
Fluorescent tagging of DNA mismatch repair (MMR) proteins like MutLα can impact their function. N-terminal tagging preserves MutLα
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- The DNA mismatch repair (MMR) system is vital for genomic stability.
- Germline mutations in MMR genes cause Lynch syndrome, a hereditary colorectal cancer.
- MLH1 variants, particularly missense mutations, often have unclear pathogenicity.
Purpose of the Study:
- To investigate the impact of N- and C-terminal fluorescent labeling on MutLα protein.
- To assess effects on protein expression, cellular localization, and MMR activity.
- To determine optimal fluorescent tagging strategies for studying MMR proteins.
Main Methods:
- Utilized recombinant systems to express N- and C-terminally fluorescently tagged MutLα.
- Analyzed protein expression levels using fluorescent tags (GFP, Red-fusion).
- Assessed cellular localization and MMR activity of tagged MutLα variants.
Main Results:
- Fluorescent tagging significantly influenced protein expression levels.
- C-terminal GFP-tagging of PMS2 led to nuclear mislocalization and impaired MMR function.
- N-terminal tagged MutLα retained correct cellular localization and MMR activity.
Conclusions:
- C-terminal fluorescent labeling can disrupt MutLα function and localization.
- N-terminal fluorescent tagging of MutLα is a reliable method for studying its cellular localization and MMR efficiency.
- This finding is crucial for accurate analysis of MMR proteins in cancer research.
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