Characterization of splice-altering mutations in inherited predisposition to cancer

Silvia Casadei1,2, Suleyman Gulsuner1,2, Brian H Shirts3

  • 1Department of Medicine, University of Washington, Seattle, WA 98195.

Insights

New cBROCA sequencing accurately assesses how inherited mutations impact tumor suppressor gene splicing. This method reveals diverse splicing alterations, aiding in understanding rare inherited cancer risks.

Area of Science:

  • Genetics
  • Molecular Biology
  • Cancer Research

Background:

  • Inherited mutations can disrupt transcriptional splicing, leading to diseases like cancer.
  • Detecting and characterizing these mutations is challenging due to their location within exons or introns.
  • Existing methods for evaluating splicing mutations are often mutation-specific or genome-wide.

Purpose of the Study:

  • To introduce and validate a complementary experimental approach, cBROCA (complementary RNA-based Onco-gene Comprehensive Analysis), for assessing genomic mutation effects on transcriptional splicing.
  • To provide qualitative and quantitative assessments of splicing alterations in tumor suppressor genes.

Main Methods:

  • Deriving complementary DNA (cDNA) from puromycin-treated patient lymphoblasts.
  • Hybridizing cDNA to the BROCA panel of tumor suppressor genes.
  • Performing multiplex sequencing to very high coverage and comparing read depths at splice junctions between test and control samples.

Main Results:

  • Identified 120 rare mutations in 150 families with hereditary cancers (breast, ovarian, uterine, colon) using BROCA analysis of genomic DNA.
  • cBROCA analysis revealed diverse splicing consequences, including exon skipping, exonification of introns, altered splicing enhancers/silencers, intron retention, and hypomorphic alleles.
  • Significant Z scores indicated altered transcripts, with read depth comparisons quantifying mutant versus normal transcript abundance.

Conclusions:

  • cBROCA sequencing offers a powerful tool for evaluating the impact of genomic mutations on transcriptional splicing.
  • The method elucidates a spectrum of splicing abnormalities in tumor suppressor genes, contributing to the understanding of rare inherited cancer predispositions.
  • Combined with pedigree analysis, cBROCA enhances the understanding of clinical consequences of rare inherited mutations.

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