Mavericks, a novel class of giant transposable elements widespread in eukaryotes and related to DNA viruses

Ellen J Pritham1, Tasneem Putliwala, Cédric Feschotte

  • 1The University of Texas at Arlington, The Department of Biology, Arlington, TX 76019, United States. pritham@uta.edu

Gene
|October 13, 2006
PubMed

Insights

Maverick mobile elements are ancient, widespread in eukaryotes, and may represent a link between viruses and transposons. These elements encode integrase and viral-like proteins, suggesting a unique transposition mechanism.

Area of Science:

  • Genetics
  • Molecular Biology
  • Evolutionary Biology

Background:

  • Atypical mobile elements, designated Mavericks, were previously identified in nematodes and zebrafish.
  • Maverick elements possess unique genetic features distinct from known retroelements and DNA transposons.

Purpose of the Study:

  • To investigate the distribution and evolutionary origins of Maverick elements across diverse eukaryotic lineages.
  • To characterize the genetic makeup and potential functions of Maverick-encoded proteins.

Main Methods:

  • Comprehensive database searches of available genome sequences.
  • Comparative and phylogenetic analyses of Maverick-encoded proteins.
  • Sequence analysis of Maverick elements, including identification of open reading frames and conserved domains.

Main Results:

  • Mavericks are widespread in invertebrates and non-mammalian vertebrates, with a patchy distribution in fungi and single-celled eukaryotes, but are absent in plants.
  • Maverick elements have recently amplified in *Trichomonas vaginalis*, occupying up to 30% of its genome.
  • Mavericks encode a retroviral-like integrase and viral-homologous proteins, including DNA polymerase B and putative capsid proteins, but lack typical retroelement ORFs.

Conclusions:

  • The distribution and genetic characteristics of Mavericks suggest an ancient eukaryotic origin with subsequent lineage-specific losses or horizontal transmissions.
  • Mavericks may represent an evolutionary link between bacteriophages, adenoviruses, and eukaryotic linear plasmids, bridging disparate mobile DNA elements.
  • The integrase-like protein likely mediates the integration of a double-stranded DNA transposition intermediate, despite the absence of other canonical retroelement features.

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