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Updated: Jun 16, 2026

Proofreading and DNA Repair Assay Using Single Nucleotide Extension and MALDI-TOF Mass Spectrometry Analysis
Published on: June 19, 2018
Flanking sequence specificity determines coding microsatellite heteroduplex and mutation rates with defective DNA
H Chung1, C G Lopez, D J Young
1Department of Medicine, University of California, San Diego, CA, USA.
Abstract:
The activin type II receptor (ACVR2) contains two identical microsatellites in exons 3 and 10, but only the exon 10 microsatellite is frameshifted in mismatch repair (MMR)-defective colonic tumors. The reason for this selectivity is not known. We hypothesized that ACVR2 frameshifts were influenced by DNA sequences surrounding the microsatellite. We constructed plasmids in which exons 3 or 10 of ACVR2 were cloned +1 bp out of frame of enhanced green fluorescent protein (EGFP), allowing -1 bp frameshift to express EGFP. Plasmids were stably transfected into MMR-deficient cells, and subsequent non-fluorescent cells were sorted, cultured and harvested for mutation analysis. We swapped DNA sequences flanking the exon 3 and 10 microsatellites to test our hypothesis. Native ACVR2 exon 3 and 10 microsatellites underwent heteroduplex formation (A(7)/T(8)) in hMLH1(-/-) cells, but only exon 10 microsatellites fully mutated (A(7)/T(7)) in both hMLH1(-/-) and hMSH6(-/-) backgrounds, showing selectivity for exon 10 frameshifts and inability of exon 3 heteroduplexes to fully mutate. Substituting nucleotides flanking the exon 3 microsatellite for nucleotides flanking the exon 10 microsatellite significantly reduced heteroduplex and full mutation in hMLH1(-/-) cells. When the exon 3 microsatellite was flanked by nucleotides normally surrounding the exon 10 microsatellite, fully mutant exon 3 frameshifts appeared. Mutation selectivity for ACVR2 lies partly with flanking nucleotides surrounding each microsatellite.
Insights
DNA sequences flanking microsatellites influence mutation selectivity in activin type II receptor (ACVR2) genes. Flanking nucleotides play a role in frameshift mutations within mismatch repair-defective colonic tumors.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Activin type II receptor (ACVR2) has two identical microsatellites in exons 3 and 10.
- Only the exon 10 microsatellite frameshifts in mismatch repair (MMR)-defective colonic tumors.
- The reason for this mutation selectivity is currently unknown.
Purpose of the Study:
- To investigate the hypothesis that DNA sequences flanking ACVR2 microsatellites influence mutation selectivity.
- To determine the role of surrounding nucleotides in ACVR2 frameshift mutations in MMR-defective cells.
Main Methods:
- Constructed plasmids with ACVR2 exons 3 or 10 cloned out of frame with enhanced green fluorescent protein (EGFP).
- Transfected plasmids into MMR-deficient cells and analyzed frameshift mutations.
- Swapped flanking DNA sequences of exon 3 and exon 10 microsatellites to assess their impact on mutation.
Main Results:
- Native ACVR2 exon 10 microsatellites fully mutated in MMR-deficient cells (hMLH1(-/-) and hMSH6(-/-)).
- Native exon 3 microsatellites showed heteroduplex formation but limited full mutation.
- Swapping flanking sequences for exon 3 microsatellites to mimic exon 10 significantly increased frameshift mutations.
Conclusions:
- Mutation selectivity for ACVR2 microsatellites is partly determined by the flanking DNA sequences.
- Nucleotide sequences surrounding microsatellites play a critical role in their mutation patterns in MMR-defective contexts.
- This finding provides insight into the mechanisms underlying frameshift mutations in cancer.
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