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Identifying DNA Mutations in Purified Hematopoietic Stem/Progenitor Cells
Published on: February 24, 2014
Detection of coding microsatellite frameshift mutations in DNA mismatch repair-deficient mouse intestinal tumors
Stefan M Woerner1,2, Elena Tosti3, Yan P Yuan4,2
1Department of Applied Tumor Biology, Institute of Pathology, University Hospital Heidelberg, Heidelberg, Germany.
Abstract:
Different DNA mismatch repair (MMR)-deficient mouse strains have been developed as models for the inherited cancer predisposing Lynch syndrome. It is completely unresolved, whether coding mononucleotide repeat (cMNR) gene mutations in these mice can contribute to intestinal tumorigenesis and whether MMR-deficient mice are a suitable molecular model of human microsatellite instability (MSI)-associated intestinal tumorigenesis. A proof-of-principle study was performed to identify mouse cMNR-harboring genes affected by insertion/deletion mutations in MSI murine intestinal tumors. Bioinformatic algorithms were developed to establish a database of mouse cMNR-harboring genes. A panel of five mouse noncoding mononucleotide markers was used for MSI classification of intestinal matched normal/tumor tissues from MMR-deficient (Mlh1(-/-) , Msh2(-/-) , Msh2(LoxP/LoxP) ) mice. cMNR frameshift mutations of candidate genes were determined by DNA fragment analysis. Murine MSI intestinal tumors but not normal tissues from MMR-deficient mice showed cMNR frameshift mutations in six candidate genes (Elavl3, Tmem107, Glis2, Sdccag1, Senp6, Rfc3). cMNRs of mouse Rfc3 and Elavl3 are conserved in type and length in their human orthologs that are known to be mutated in human MSI colorectal, endometrial and gastric cancer. We provide evidence for the utility of a mononucleotide marker panel for detection of MSI in murine tumors, the existence of cMNR instability in MSI murine tumors, the utility of mouse subspecies DNA for identification of polymorphic repeats, and repeat conservation among some orthologous human/mouse genes, two of them showing instability in human and mouse MSI intestinal tumors. MMR-deficient mice hence are a useful molecular model system for analyzing MSI intestinal carcinogenesis.
Insights
DNA mismatch repair-deficient mice are a valuable model for Lynch syndrome research. Studies show coding mononucleotide repeat mutations in these mice contribute to intestinal tumors, confirming their utility for studying microsatellite instability (MSI) in human cancers.
Area of Science:
- Genetics and Genomics
- Cancer Biology
- Mouse Models of Human Disease
Background:
- DNA mismatch repair (MMR)-deficient mouse strains model Lynch syndrome, an inherited cancer predisposition.
- The role of coding mononucleotide repeat (cMNR) mutations in intestinal tumorigenesis in these mice remains unclear.
- Suitability of MMR-deficient mice as a model for human microsatellite instability (MSI)-associated intestinal cancer is unresolved.
Purpose of the Study:
- To investigate if cMNR gene mutations contribute to intestinal tumorigenesis in MMR-deficient mice.
- To determine if MMR-deficient mice are a suitable molecular model for human MSI-associated intestinal tumorigenesis.
- To identify mouse cMNR-harboring genes affected by mutations in MSI murine intestinal tumors.
Main Methods:
- Developed bioinformatic algorithms to create a database of mouse cMNR-harboring genes.
- Classified MSI in intestinal tissues from MMR-deficient mice using a panel of five noncoding mononucleotide markers.
- Determined cMNR frameshift mutations in candidate genes using DNA fragment analysis.
Main Results:
- Murine MSI intestinal tumors exhibited cMNR frameshift mutations in six candidate genes (Elavl3, Tmem107, Glis2, Sdccag1, Senp6, Rfc3).
- Normal tissues from MMR-deficient mice did not show these cMNR mutations.
- Mouse Rfc3 and Elavl3 cMNRs are conserved in human orthologs, which are known to be mutated in human MSI cancers.
Conclusions:
- MMR-deficient mice demonstrate cMNR instability in MSI intestinal tumors, supporting their utility as a model.
- A mononucleotide marker panel is effective for MSI detection in murine tumors.
- MMR-deficient mice serve as a useful system for analyzing MSI intestinal carcinogenesis, with conserved gene mutations relevant to human cancers.
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