Epidemiology of doublet/multiplet mutations in lung cancers: evidence that a subset arises by chronocoordinate events

Zhenbin Chen1, Jinong Feng, Carolyn H Buzin

  • 1Department of Molecular Genetics, City of Hope National Medical Center, Duarte, CA, USA.

Plos One
|November 14, 2008
PubMed
Abstract

Insights

Doublet mutations in lung cancer genes EGFR and TP53 are more common than in mice, suggesting chronocoordinate events. These mutations, particularly in EGFR, show patterns consistent with coordinated origins, warranting further study in model systems.

Area of Science:

  • Genetics
  • Cancer Biology
  • Genomic Instability

Background:

  • Spontaneous doublet mutations in mice often arise from chronocoordinate events.
  • Human cancer mutagenesis, especially doublet and multiplet mutations (domuplets), is less understood.
  • Lung cancer, a leading cause of cancer death, is analyzed for domuplet epidemiology.

Purpose of the Study:

  • To analyze the epidemiology of doublet and multiplet mutations in the EGFR and TP53 genes in human lung cancer.
  • To compare the occurrence of these mutations in lung cancer to spontaneous doublets in mouse models.
  • To investigate potential chronocoordinate origins of these mutations in lung cancer.

Main Methods:

  • Collected EGFR mutation data from 66 published papers and an updated database.
  • Collected TP53 mutation data from IARC version 12.
  • Analyzed mutation data for differences across race, ethnicity, gender, and smoking status.
  • Compared mutation frequencies in human lung cancer to mouse models.

Main Results:

  • No significant differences in race, ethnicity, gender, or smoking status were observed for EGFR and TP53 doublets.
  • Doublets in EGFR and TP53 genes are elevated approximately eight- and three-fold, respectively, in human lung cancer compared to mouse.
  • EGFR doublets showed characteristics like clustered frameshift mutations and close spacing, suggesting chronocoordinate events.

Conclusions:

  • The aggregate properties of doublet and multiplet mutations in lung cancer, especially in EGFR, are consistent with a subset derived from chronocoordinate events.
  • TP53 doublets also exhibit close spacing, suggesting potential chronocoordinate origins.
  • Further work in model systems is needed to confirm the significance of chronocoordinate events in lung and other cancers.

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