Germline mutation landscape of multiple endocrine neoplasia type 1 using full gene next-generation sequencing

Rafael A Carvalho1, Betsaida Urtremari1, Alexander A L Jorge1

  • 1Unidade de Endocrinologia Genetica UEG, Laboratorio de Endocrinologia Celular e Molecular LIM-25, Disciplina de Endocrinologia.

Insights

Germline mutations in the MEN1 gene cause multiple endocrine neoplasia type 1 (MEN1). This study found that point mutations in non-coding MEN1 regions are rare, with targeted next-generation sequencing proving effective for genetic testing.

Area of Science:

  • Endocrinology
  • Genetics
  • Molecular Biology

Background:

  • Germline loss-of-function mutations in the MEN1 gene are identified in 75-95% of multiple endocrine neoplasia type 1 (MEN1) patients.
  • The presence of mutations in non-coding MEN1 regions in the remaining patients remains under-investigated.

Purpose of the Study:

  • To comprehensively sequence the entire MEN1 gene, including promoter, exons, and introns, in a large cohort.
  • To determine the mutation profile and assess the frequency of mutations in non-coding regions.

Main Methods:

  • Developed a targeted next-generation sequencing (tNGS) assay for the 7.2 kb MEN1 gene.
  • Investigated germline mutations in 76 unrelated MEN1 probands (49 familial, 27 sporadic).
  • Validated tNGS results with Sanger sequencing (SS) and utilized multiplex ligation-dependent probe amplification (MLPA) for large deletions.

Main Results:

  • Identified germline MEN1 variants in the coding region and splicing sites of 57/76 patients (74%) with 100% tNGS/SS reproducibility.
  • Discovered 38 distinct pathogenic or likely pathogenic variants, including 13 novel and six recurrent mutations.
  • Detected three large deletions via MLPA; no pathogenic point or short indel mutations were found in non-coding, regulatory, or deep intronic MEN1 regions.

Conclusions:

  • Point or short indel mutations in non-coding regions of the MEN1 gene are exceedingly rare in MEN1 patients.
  • Targeted next-generation sequencing (tNGS) is a highly effective and reproducible technology for routine genetic testing in MEN1.
  • The study confirms that most MEN1 cases are explained by coding region or splicing site mutations, or large deletions.

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