Genome Sequence of the Lager Brewing Yeast, an Interspecies Hybrid
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Masahira Hattori | Yoshihiro Nakao | Yukiko Kodama | M. Hattori | T. Itoh | T. Ashikari | S. Rainieri | Y. Nakao | Takehiko Itoh | Takeshi Kanamori | Sandra Rainieri | Norihisa Nakamura | Tomoko Shimonaga | Toshihiko Ashikari | Y. Kodama | Takeshi Kanamori | N. Nakamura | T. Shimonaga
[1] G. Sherlock,et al. Reconstruction of the genome origins and evolution of the hybrid lager yeast Saccharomyces pastorianus. , 2008, Genome research.
[2] P. Mieczkowski,et al. Double-strand breaks associated with repetitive DNA can reshape the genome , 2008, Proceedings of the National Academy of Sciences.
[3] A. Pulvirenti,et al. The inheritance of mtDNA in lager brewing strains. , 2008, FEMS yeast research.
[4] Osamu Kobayashi,et al. Identification and characterization of amidase‐ homologous AMI1 genes of bottom‐fermenting yeast , 2007, Yeast.
[5] H. Hatanaka,et al. Characterization of a novel tyrosine permease of lager brewing yeast shared by Saccharomyces cerevisiae strain RM11-1a. , 2007, FEMS yeast research.
[6] Peilin Jia,et al. Genome sequencing and comparative analysis of Saccharomyces cerevisiae strain YJM789 , 2007, Proceedings of the National Academy of Sciences.
[7] H. Steensma,et al. Factors involved in anaerobic growth of Saccharomyces cerevisiae. , 2007 .
[8] Y. Kaneko,et al. Pure and Mixed Genetic Lines of Saccharomyces bayanus and Saccharomyces pastorianus and Their Contribution to the Lager Brewing Strain Genome , 2006, Applied and Environmental Microbiology.
[9] L. Ruohonen,et al. Characterization and Functional Analysis of the MAL and MPH Loci for Maltose Utilization in Some Ale and Lager Yeast Strains , 2005, Applied and Environmental Microbiology.
[10] J. Londesborough,et al. Maltotriose utilization in lager yeast strains: MTT1 encodes a maltotriose transporter , 2005, Yeast.
[11] David C. Schwartz,et al. Whole-Genome Shotgun Optical Mapping of Rhodospirillum rubrum , 2004, Applied and Environmental Microbiology.
[12] G. Suzzi,et al. Quest for wine yeasts—An old story revisited , 1996, Journal of Industrial Microbiology.
[13] B. Birren,et al. Proof and evolutionary analysis of ancient genome duplication in the yeast Saccharomyces cerevisiae , 2004, Nature.
[14] A. Martini,et al. Three newly delimited species of Saccharomyces sensu stricto , 2004, Antonie van Leeuwenhoek.
[15] Laureana Rebordinos,et al. Genome-wide amplifications caused by chromosomal rearrangements play a major role in the adaptive evolution of natural yeast. , 2003, Genetics.
[16] S. Carroll,et al. Genome-scale approaches to resolving incongruence in molecular phylogenies , 2003, Nature.
[17] D. Gottschling,et al. An Age-Induced Switch to a Hyper-Recombinational State , 2003, Science.
[18] L. Hillier,et al. PCAP: a whole-genome assembly program. , 2003, Genome research.
[19] B. Birren,et al. Sequencing and comparison of yeast species to identify genes and regulatory elements , 2003, Nature.
[20] A. Meister,et al. Uniparental loss of ribosomal DNA in the allotetraploid grass Zingeria trichopoda (2n = 8). , 2003, Genome.
[21] David Botstein,et al. Characteristic genome rearrangements in experimental evolution of Saccharomyces cerevisiae , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[22] Amparo Querol,et al. Molecular characterization of a chromosomal rearrangement involved in the adaptive evolution of yeast strains. , 2002, Genome research.
[23] Ronald W. Davis,et al. Functional profiling of the Saccharomyces cerevisiae genome , 2002, Nature.
[24] M. Takashio,et al. Breeding of brewer's yeast by hybridization between a top-fermenting yeast Saccharomyces cerevisiae and a cryophilic yeast Saccharomyces bayanus. , 2002, Journal of bioscience and bioengineering.
[25] N. Shirley,et al. Evidence for multiple interspecific hybridization in Saccharomyces sensu stricto species. , 2002, FEMS yeast research.
[26] David E. Quain,et al. Brewing Yeast and Fermentation , 2001 .
[27] T. Ashikari,et al. Isolation and Characterization of a Gene Specific to Lager Brewing Yeast That Encodes a Branched-Chain Amino Acid Permease , 2001, Applied and Environmental Microbiology.
[28] J. Piškur,et al. Diversity in organization and the origin of gene orders in the mitochondrial DNA molecules of the genus Saccharomyces. , 2000, Molecular biology and evolution.
[29] K. Tanaka,et al. Diversity of the HO gene encoding an endonuclease for mating‐type conversion in the bottom fermenting yeast Saccharomyces pastorianus , 2000, Yeast.
[30] I. Spencer‐Martins,et al. FSY1, a Novel Gene Encoding a Specific Fructose/H+ Symporter in the Type Strain ofSaccharomyces carlsbergensis , 2000, Journal of bacteriology.
[31] A. Pulvirenti,et al. Inheritance of mitochondrial DNA in interspecific Saccharomyces hybrids , 2000 .
[32] N. Price,et al. The proton-linked monocarboxylate transporter (MCT) family: structure, function and regulation. , 1999, The Biochemical journal.
[33] T. Ogata,et al. Chromosomal structures of bottom fermenting yeasts. , 1999, Systematic and applied microbiology.
[34] L. Jespersen,et al. Multiple α-Glucoside Transporter Genes in Brewer’s Yeast , 1999, Applied and Environmental Microbiology.
[35] L. Jespersen,et al. Multiple alpha-glucoside transporter genes in brewer's yeast. , 1999, Applied and environmental microbiology.
[36] Y. Kaneko,et al. Co‐existence of two types of chromosome in the bottom fermenting yeast, Saccharomyces pastorianus , 1998, Yeast.
[37] P. Green,et al. Base-calling of automated sequencer traces using phred. I. Accuracy assessment. , 1998, Genome research.
[38] C. Gautier,et al. Phylogenetic analysis of the Saccharomyces cerevisiae group based on polymorphisms of rDNA spacer sequences. , 1998, International journal of systematic bacteriology.
[39] G. Carignani,et al. Evolution of mitochondrial DNA in yeast: gene order and structural organization of the mitochondrial genome of Saccharomyces uvarum , 1998, Current Genetics.
[40] M. Lipsitch,et al. Dual roles for DNA sequence identity and the mismatch repair system in the regulation of mitotic crossing-over in yeast. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[41] K. H. Wolfe,et al. Molecular evidence for an ancient duplication of the entire yeast genome , 1997, Nature.
[42] C. Gaillardin,et al. Two Subgroups within the Saccharomyces bayanus Species Evidenced by PCR Amplification and Restrictio , 1997 .
[43] H. Yoshimoto,et al. Nucleotide sequences of alcohol acetyltransferase genes from lager brewing yeast, Saccharomyces carlsbergensis , 1996, Yeast.
[44] Y. Shibano,et al. Improvement of Maltose Fermentation Efficiency: Constitutive Expression of MAL Genes in Brewing Yeasts , 1995 .
[45] G. Stewart,et al. Factors influencing maltotriose utilization during brewery wort fermentations. , 1994 .
[46] J. Hansen,et al. Saccharomyces carlsbergensis contains two functional MET2 alleles similar to homologues from S. cerevisiae and S. monacensis. , 1994, Gene.
[47] S. Aho,et al. Cloning, sequence and chromosomal location of a MEL gene from Saccharomyces carlsbergensis NCYC396. , 1991, Gene.
[48] H. Klein. Different types of recombination events are controlled by the RAD1 and RAD52 genes of Saccharomyces cerevisiae. , 1988, Genetics.
[49] M. Kupiec,et al. Allelic and ectopic recombination between Ty elements in yeast. , 1988, Genetics.
[50] T. Petes,et al. Recombination between repeated genes in microorganisms. , 1988, Annual review of genetics.
[51] S. Holmberg,et al. Analysis of chromosome V and theILV1 gene from Saccharomyces carlsbergensis , 1986 .
[52] C. Kurtzman,et al. Deoxyribonucleic acid relatedness among species of the genus Saccharomyces sensu stricto , 1985 .
[53] S. Holmberg,et al. Transfer of chromosome III duringkar mediated cytoduction in yeast , 1980 .