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Vol. 12, Issue 6, 930-943, June 2002
LETTER
Genomic Evolution of the Long Terminal Repeat Retrotransposons in Hemiascomycetous Yeasts
Cécile
Neuvéglise,1,4
Horst
Feldmann,2
Elisabeth
Bon,1
Claude
Gaillardin,1 and
and
Serge
Casaregola1
1 Collection de Levures d'Intérêt
Biotechnologique, Laboratoire de Génétique
Moléculaire et Cellulaire, INRA UMR216, CNRS URA1925, INA-PG,
BP01, F-78850 Thiverval-Grignon, France;
2 Adolf-Butenandt-Institut, Molekularbiologie, D-80336
München, Germany
We identified putative long terminal repeat- (LTR)
retrotransposon sequences among the 50,000 random sequence tags (RSTs) obtained by the Génolevures project from genomic libraries of 13 Hemiascomycetes species. In most cases additional sequencing enabled us
to assemble the whole sequences of these retrotransposons. These
approaches identified 17 distinct families, 10 of which are defined by
full-length elements. We also identified five families of solo LTRs
that were not associated with retrotransposons. Ty1-like retrotransposons were found in four of five species that are
phylogenetically related to Saccharomyces cerevisiae (S.
uvarum, S. exiguus, S. servazzii, and S. kluyveri but not
Zygosaccharomyces rouxii), and in two of three
Kluyveromyces species (K. lactis and K. marxianus but
not K. thermotolerans). Only multiply crippled elements could be identified in the K. lactis and S. servazzii
strains analyzed, and only solo LTRs could be identified in S. uvarum. Ty4-like elements were only detected in S. uvarum,
indicating that these elements appeared recently before speciation
of the Saccharomyces sensu stricto species. Ty5-like elements
were detected in S. exiguus, Pichia angusta, and
Debaryomyces hansenii. A retrotransposon homologous with Tca2
from Candida albicans, an element absent from S. cerevisiae, was detected in the closely related species D. hansenii. A complete Ty3/gypsy element was present in
S. exiguus, whereas only partial, often degenerate, sequences
resembling this element were found in S. servazzii, Z. rouxii, S. kluyveri, C. tropicalis, and Yarrowica lipolytica. P. farinosa
(syn. P. sorbitophila) is currently the only yeast species
in which no LTR retrotransposons or remnants have been found. Thorough
analysis of protein sequences, structural characteristics of the
elements, and phylogenetic relationships deduced from these data
allowed us to propose a classification for the Ty1/copia
elements of hemiascomycetous yeasts and a model of LTR-retrotransposon
evolution in yeasts.
4
Corresponding author.
12:930-943 ©2002 by Cold Spring Harbor Laboratory Press ISSN 1088-9051/02 $5.00

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