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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.
Abstract:
We have previously found with the microcell hybrid-based "elimination test" that human chromosome 3 transferred into murine or human tumor cells regularly lost certain 3p regions during tumor growth in SCID mice. The most common eliminated region, CER1, is approximately 2.4 Mb at 3p21.3. CER1 breakpoints were clustered in approximately 200-kb regions at both telomeric and centromeric borders. We have also shown, earlier, that tumor-related deletions often coincide with human/mouse synteny breakpoints on 3p12-p22. Here we describe the results of a comparative genomic analysis on the CER1 region in Caenorhabditis elegans, Drosophila melanogaster, Fugu rubripes, Gallus gallus, Mus musculus, Rattus norvegicus, and Canis familiaris. First, four independent synteny breaks were found within the CER1 telomeric breakpoint cluster region, comparing human, dog, and chicken genomes, and two independent synteny breaks within the CER1 centromeric breakpoint cluster region, comparing human, mouse, and chicken genomes, suggesting a nonrandom involvement of tumor breakpoint regions in chromosome evolution. Second, both CER1 breakpoint cluster regions show recent tandem duplications (seven Zn finger protein family genes at the telomeric and eight chemokine receptor genes at the centromeric side). Finally, all genes from these regions underwent horizontal evolution in mammals, with formation of new genes and expansion of gene families, which were displayed in the human genome as tandem gene duplications and pseudogene insertions. In contrast the CER1 middle region contained evolutionarily well-conserved solitary genes and a minimal amount of retroposed genes. The coincidence of evolutionary plasticity with CER1 breakpoints may suggest that regional structural instability is expressed in both evolutionary and cancer-associated chromosome rearrangements.
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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