Evolutionarily plastic regions at human 3p21.3 coincide with tumor breakpoints identified by the "elimination test"

E Darai1, M Kost-Alimova, H Kiss

  • 1Microbiology and Tumor Biology Center, Karolinska Institutet, Nobelsväg 16, S-171 77 Stockholm, Sweden.

Genomics
|May 26, 2005
PubMed

Insights

Tumor cells frequently lose specific human chromosome 3 regions, particularly CER1 at 3p21.3. Comparative genomics reveals these breakpoints are hotspots for chromosome evolution, suggesting structural instability drives both cancer and evolution.

Area of Science:

  • Genomics
  • Evolutionary Biology
  • Cancer Research

Background:

  • Human chromosome 3 deletions, specifically the CER1 region at 3p21.3, are recurrent in tumor cells.
  • Previous studies linked tumor deletions to synteny breakpoints on chromosome 3p12-p22.

Purpose of the Study:

  • To conduct a comparative genomic analysis of the CER1 region across multiple species.
  • To investigate the evolutionary significance of CER1 breakpoint cluster regions.

Main Methods:

  • Comparative genomic analysis of the CER1 region in human, dog, chicken, mouse, rat, fish, fruit fly, and worm.
  • Identification of synteny breaks, tandem duplications, and gene family evolution within the CER1 region.

Main Results:

  • Identified multiple independent synteny breaks within CER1 breakpoint clusters, suggesting nonrandom involvement in chromosome evolution.
  • Discovered recent tandem duplications of gene families (Zinc finger proteins, chemokine receptors) at CER1 breakpoint regions.
  • Observed extensive horizontal evolution of genes in CER1 regions within mammals, contrasting with conserved genes in the middle CER1 region.

Conclusions:

  • CER1 breakpoint regions exhibit significant evolutionary plasticity, characterized by duplications and gene family expansion.
  • The structural instability at CER1 breakpoints appears to be a shared feature in both evolutionary chromosome rearrangements and cancer-associated deletions.
  • This suggests a common mechanism underlying regional instability in chromosome evolution and tumorigenesis.

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