Exon expression arrays as a tool to identify new cancer genes

Mieke Schutte1, Fons Elstrodt, Linda B C Bralten

  • 1Department of Medical Oncology, Josephine Nefkens Institute, Erasmus University Medical Center, Rotterdam, The Netherlands. a.schutte@erasmusmc.nl

Plos One
|August 9, 2008
PubMed
Abstract

Insights

A new PAttern based Correlation (PAC) strategy efficiently screens for exon-skipping events in cancer. This method identifies novel genetic changes and candidate cancer genes, aiding oncogenesis research.

Area of Science:

  • Oncology
  • Genetics
  • Molecular Biology

Background:

  • Identifying genes in oncogenesis is crucial for cancer research.
  • 10-20% of cancer mutations involve exon skipping.
  • Exon skipping leads to aberrant transcripts.

Purpose of the Study:

  • To develop and test a global screening strategy for exon-skipping events.
  • To adapt the PAttern based Correlation (PAC) algorithm for single-sample analysis.
  • To identify candidate cancer genes through aberrant exon expression.

Main Methods:

  • Utilized the PAttern based Correlation (PAC) algorithm.
  • Applied PAC to screen for exon skipping in human cancer cell lines and clinical specimens.
  • Validated findings through sequence analysis of outlier exons.

Main Results:

  • PAC successfully detected all seven known exon-skipping mutants in 12 cancer cell lines.
  • Identified exon-skipping mutants in clinical samples, despite expression heterogeneity.
  • Reduced candidate genes for analysis by 2-3 orders of magnitude with a high true positive rate.
  • Discovered two novel exon skipping events and two novel base changes in clinical samples.

Conclusions:

  • PAC effectively enriches for mutated transcripts.
  • The strategy successfully identifies both known and novel genetic alterations.
  • PAC is a suitable method for identifying candidate cancer genes.

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