Genome Res. 13:1897-1903, 2003
©2003 by Cold Spring Harbor Laboratory Press; ISSN 1088-9051/03 $5.00
Letter
Effects of Recombination Rate and Gene Density on Transposable Element Distributions in Arabidopsis thaliana
Stephen I. Wright1,3,
Newton Agrawal2 and
Thomas E. Bureau2
1 Institute of Cell, Animal and Population Biology, University of Edinburgh,
Ashworth Laboratories, Edinburgh, Scotland EH9 3JT, UK
2 Department of Biology, McGill University, Penfield, Montreal, Quebec,
Canada H3A 1B1
Transposable elements (TEs) comprise a major component of eukaryotic
genomes, and exhibit striking deviations from random distribution across the
genomes studied, including humans, flies, nematodes, and plants. Although
considerable progress has been made in documenting these patterns, the causes
are subject to debate. Here, we use the genome sequence of Arabidopsis
thaliana to test for the importance of competing models of natural
selection against TE insertions. We show that, despite TE accumulation near
the centromeres, recombination does not generally correlate with TE abundance,
suggesting that selection against ectopic recombination does not influence TE
distribution in A. thaliana. In contrast, a consistent negative
correlation between gene density and TE abundance, and a strong
under-representation of TE insertions in introns suggest that selection
against TE disruption of gene expression is playing a more important role in
A. thaliana. High rates of self-fertilization may reduce the
importance of recombination rate in genome structuring in inbreeding organisms
such as A. thaliana and Caenorhabditis elegans.
Article and publication are at
http://www.genome.org/cgi/doi/10.1101/gr.1281503.
3 Corresponding author. E-MAIL
stephen.wright{at}ed.ac.uk;
FAX 131-6506564.
[Supplemental material is available online at www.genome.org.]

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