Somatic sequence alterations in twenty-one genes selected by expression profile analysis of breast carcinomas

Stephen J Chanock1, Laurie Burdett, Meredith Yeager

  • 1Section of Genomic Variation, Pediatric Oncology Branch, Center for Cancer Research, National Cancer Institute, National Institutes of Health, Bethesda, Maryland 20892-4605, USA. chanocks@mail.nih.gov

Abstract

Insights

This study analyzed 21 breast cancer genes, identifying 87 unique somatic alterations in 16 genes. Re-sequence analysis is crucial for discovering cancer genes and understanding somatic alterations in breast carcinoma.

Area of Science:

  • Genomics
  • Cancer Biology
  • Molecular Oncology

Background:

  • Genomic alterations in breast carcinoma impact cell proliferation, signaling, and metastasis.
  • Previous studies identified critical somatic mutations (e.g., TP53, PIK3CA) through re-sequencing candidate genes.
  • Expression profiling studies identified genes relevant to breast cancer subtyping and prognosis.

Purpose of the Study:

  • To extend genomic analysis by re-sequencing 21 genes identified through expression profiling.
  • To investigate somatic alterations in breast tumor samples for cancer gene discovery.

Main Methods:

  • Bidirectional re-sequence analysis of all exons and regulatory/conserved regions of 21 genes.
  • Analysis performed on 91 breast tumor samples.
  • Investigated over 16 megabases of genomic sequence.

Main Results:

  • Identified 87 unique somatic alterations across 16 genes.
  • Seventy-eight alterations were single base pair changes (23 missense mutations, 55 non-coding).
  • Nine insertion/deletion alterations were found; five genes showed no alterations.

Conclusions:

  • Re-sequence analysis is valuable for cancer gene discovery.
  • Characterizing somatic alterations across functionally related genes, based on expression patterns, is important.
  • Further gene-specific analysis is needed to determine the functional impact of identified alterations.

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