Genome evolution in yeasts

被引:0
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作者
Bernard Dujon
David Sherman
Gilles Fischer
Pascal Durrens
Serge Casaregola
Ingrid Lafontaine
Jacky de Montigny
Christian Marck
Cécile Neuvéglise
Emmanuel Talla
Nicolas Goffard
Lionel Frangeul
Michel Aigle
Véronique Anthouard
Anna Babour
Valérie Barbe
Stéphanie Barnay
Sylvie Blanchin
Jean-Marie Beckerich
Emmanuelle Beyne
Claudine Bleykasten
Anita Boisramé
Jeanne Boyer
Laurence Cattolico
Fabrice Confanioleri
Antoine de Daruvar
Laurence Despons
Emmanuelle Fabre
Cécile Fairhead
Hélène Ferry-Dumazet
Alexis Groppi
Florence Hantraye
Christophe Hennequin
Nicolas Jauniaux
Philippe Joyet
Rym Kachouri
Alix Kerrest
Romain Koszul
Marc Lemaire
Isabelle Lesur
Laurence Ma
Héloïse Muller
Jean-Marc Nicaud
Macha Nikolski
Sophie Oztas
Odile Ozier-Kalogeropoulos
Stefan Pellenz
Serge Potier
Guy-Franck Richard
Marie-Laure Straub
机构
[1] Unité de Génétique Moléculaire des Levures (URA 2171 CNRS and UFR 927 Université Pierre et Marie Curie),Plate
[2] Pasteur Génopole Ile-de-,forme génomique
[3] Unité de Génétique des interactions macromoléculaires (URA 2171 CNRS),Centre de Bioinformatique de Bordeaux
[4] Institut Pasteur,Institut de Biochimie et Génétique Cellulaires (UMR 5095 CNRS)
[5] Groupe Logiciels et Banques de données,Laboratoire de Dynamique, Evolution et Expression des Génomes de Microorganismes (FRE 2326 CNRS)
[6] Institut Pasteur,Institut de Génétique Moléculaire (UMR 8621 CNRS)
[7] Laboratoire Bordelais de Recherche en Informatique (LaBRI,Laboratoire de Génétique des Levures (UMR 5122 CNRS)
[8] UMR 5800 CNRS),undefined
[9] Université Victor Ségalen (Bordeaux 2),undefined
[10] Université Victor Ségalen (Bordeaux 2),undefined
[11] Collection de Levures d'Intérêt Biotechnologique et Laboratoire de Génétique Moléculaire et Cellulaire (UMR 216 INRA and URA 1925 CNRS),undefined
[12] INA-PG,undefined
[13] Université Louis Pasteur,undefined
[14] Service de Biochimie et de Génétique Moléculaire,undefined
[15] CEA/Saclay,undefined
[16] Génoscope (UMR 8030 CNRS),undefined
[17] Université de Paris Sud,undefined
[18] Modélisations et Simulations des Acides Nucléiques,undefined
[19] IBMC (UPR 9002 CNRS),undefined
[20] Université Claude Bernard,undefined
[21] Bâtiment Lwoff,undefined
来源
Nature | 2004年 / 430卷
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摘要
Identifying the mechanisms of eukaryotic genome evolution by comparative genomics is often complicated by the multiplicity of events that have taken place throughout the history of individual lineages, leaving only distorted and superimposed traces in the genome of each living organism. The hemiascomycete yeasts, with their compact genomes, similar lifestyle and distinct sexual and physiological properties, provide a unique opportunity to explore such mechanisms. We present here the complete, assembled genome sequences of four yeast species, selected to represent a broad evolutionary range within a single eukaryotic phylum, that after analysis proved to be molecularly as diverse as the entire phylum of chordates. A total of approximately 24,200 novel genes were identified, the translation products of which were classified together with Saccharomyces cerevisiae proteins into about 4,700 families, forming the basis for interspecific comparisons. Analysis of chromosome maps and genome redundancies reveal that the different yeast lineages have evolved through a marked interplay between several distinct molecular mechanisms, including tandem gene repeat formation, segmental duplication, a massive genome duplication and extensive gene loss.
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页码:35 / 44
页数:9
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