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Published on: April 20, 2021
A cryptic paracentric inversion of MSH2 exons 2-6 causes Lynch syndrome
Qing Liu1, Luke B Hesson1, Andrea C Nunez1
1Adult Cancer Program , Lowy Cancer Research Centre and Prince of Wales Clinical School, UNSW Australia , Sydney New South Wales 2052 , Australia.
Abstract:
Lynch syndrome is an autosomal dominant disorder that predisposes carriers of DNA mismatch repair (MMR) gene mutations to early-onset cancer. Germline testing screens exons and splice sites for mutations, but does not examine introns or RNA transcripts for alterations. Pathogenic mutations have not been detected in ~30% of suspected Lynch syndrome cases with standard screening practices. We present a 38-year-old male with a clinicopathological and family history consistent with Lynch syndrome, including loss of MSH2 expression in his tumor. Germline testing revealed normal MSH2 coding sequence, splice sites and exon copy number, however, cDNA sequencing identified an aberrant MSH2 transcript lacking exons 2-6. An inversion PCR on germline DNA identified an ~18kb unbalanced, paracentric inversion within MSH2, with breakpoints in a long terminal repeat in intron 1 and an Alu repeat in intron 6. The 3' end of the inversion had a 1.2 kb deletion and an 8 bp insertion at the junction with intron 6. Screening of 55 additional Australian patients presenting with MSH2-deficient tumors who were negative in germline genetic tests for MSH2 mutations identified another inversion-positive patient. We propose an Alu-mediated recombination model to explain the origin of the inversion. Our study illustrates the potential value of cDNA screening to identify patients with cryptic MMR gene rearrangements, clarifies why standard testing may not detect some pathogenic alterations, and provides a genetic test for screening individuals with suspected Lynch syndrome that present with unexplained MSH2-deficient tumors.
Insights
Lynch syndrome genetic testing can miss hidden MSH2 gene inversions. New methods like cDNA screening can detect these cryptic rearrangements, improving diagnosis for early-onset cancer risk.
Area of Science:
- Genetics
- Molecular Biology
- Oncology
Background:
- Lynch syndrome, an inherited cancer predisposition, is linked to DNA mismatch repair (MMR) gene mutations.
- Standard genetic testing for Lynch syndrome examines coding regions and splice sites, missing intronic or RNA alterations.
- Approximately 30% of suspected Lynch syndrome cases remain undiagnosed with current screening.
Observation:
- A patient with Lynch syndrome features and MSH2 loss showed normal germline sequencing but an aberrant MSH2 transcript lacking exons 2-6.
- Further investigation revealed an ~18kb MSH2 inversion with deletion and insertion, identified via PCR on germline DNA.
- Another patient with MSH2-deficient tumors and negative germline tests was also found to have this inversion.
Findings:
- A novel, large unbalanced paracentric inversion in the MSH2 gene, caused by Alu-mediated recombination, was identified.
- This inversion disrupts MSH2 gene expression, leading to MSH2-deficient tumors and Lynch syndrome phenotype.
- cDNA screening is crucial for detecting such cryptic MMR gene rearrangements missed by standard genetic tests.
Implications:
- This study highlights the limitations of standard Lynch syndrome genetic testing and introduces a new diagnostic approach.
- Identifying these cryptic MSH2 rearrangements allows for accurate diagnosis and genetic counseling for affected families.
- The findings underscore the importance of comprehensive genetic analysis for hereditary cancer syndromes.
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