Global mapping of transposon location
- PMID: 17173485
- PMCID: PMC1698948
- DOI: 10.1371/journal.pgen.0020212
Global mapping of transposon location
Abstract
Transposable genetic elements are ubiquitous, yet their presence or absence at any given position within a genome can vary between individual cells, tissues, or strains. Transposable elements have profound impacts on host genomes by altering gene expression, assisting in genomic rearrangements, causing insertional mutations, and serving as sources of phenotypic variation. Characterizing a genome's full complement of transposons requires whole genome sequencing, precluding simple studies of the impact of transposition on interindividual variation. Here, we describe a global mapping approach for identifying transposon locations in any genome, using a combination of transposon-specific DNA extraction and microarray-based comparative hybridization analysis. We use this approach to map the repertoire of endogenous transposons in different laboratory strains of Saccharomyces cerevisiae and demonstrate that transposons are a source of extensive genomic variation. We also apply this method to mapping bacterial transposon insertion sites in a yeast genomic library. This unique whole genome view of transposon location will facilitate our exploration of transposon dynamics, as well as defining bases for individual differences and adaptive potential.
Conflict of interest statement
Competing interests. Some reagents were the gift of Qiagen and others were the gift of Generation Biotech. One author (JD) is the founder of Generation Biotech and an inventor of haplotype-specific extraction (United States 2001–0031467 A1). Qiagen has licensed the commercial rights to haplotype-specific extraction products from Generation Biotech. AG, JD, and MJD have applied for a patent based on this work.
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References
-
- Kazazian HH., Jr Mobile elements and disease. Curr Opin Genet Dev. 1998;8:343–350. - PubMed
-
- Engels WR. P elements in Drosophila . Curr Top Microbiol Immunol. 1996;204:103–123. - PubMed
-
- Kim JM, Vanguri S, Boeke JD, Gabriel A, Voytas DF. Transposable elements and genome organization: A comprehensive survey of retrotransposons revealed by the Saccharomyces cerevisiae genome sequence. Genome Res. 1998;8:464–478. - PubMed
-
- Bennetzen JL. Transposable element contributions to plant gene and genome evolution. Plant Mol Biol. 2000;42:251–269. - PubMed
-
- Bushman FD. Targeting survival: Integration site selection by retroviruses and LTR-retrotransposons. Cell. 2003;115:135–138. - PubMed
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