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1. Kurtzman  CP, Robnett  CJ,     ( 2010 )

Systematics of methanol assimilating yeasts and neighboring taxa from multigene sequence analysis and the proposal of Peterozyma gen. nov., a new member of the Saccharomycetales.

FEMS yeast research 10 (3)
PMID : 20522116  :   DOI  :   10.1111/j.1567-1364.2010.00625.x    
Abstract >>
The relatedness among methanol-assimilating yeasts assigned to the genus Ogataea and neighboring taxa (Phylum Ascomycota, Subphylum Saccharomycotina, Class Saccharomycetes, Order Saccharomycetales) was determined from phylogenetic analyses of gene sequences for nuclear large and small subunit (SSU) rRNAs, translation elongation factor-1alpha and mitochondrial SSU rRNA. On the basis of the analyses, Williopsis salicorniae and seven species of Pichia are proposed for transfer to the genus Ogataea, which has been emended, and Pichia angophorae, a nonhyphal species, is proposed for transfer to the mycelium forming genus Ambrosiozyma. Pichia toletana and Pichia xylosa form an independent lineage and are assigned to the genus Peterozyma, which is newly proposed.
KeywordMeSH Terms
2. Kurtzman  CP, Robnett  CJ, Basehoar-Powers  E,     ( 2008 )

Phylogenetic relationships among species of Pichia, Issatchenkia and Williopsis determined from multigene sequence analysis, and the proposal of Barnettozyma gen. nov., Lindnera gen. nov. and Wickerhamomyces gen. nov.

FEMS yeast research 8 (6)
PMID : 18671746  :   DOI  :   10.1111/j.1567-1364.2008.00419.x    
Abstract >>
Relationships among species assigned to the yeast genera Pichia, Issatchenkia and Williopsis, which are characterized by the ubiquinone CoQ-7 and inability to utilize methanol, were phylogenetically analyzed from nucleotide sequence divergence in the genes coding for large and small subunit rRNAs and for translation elongation factor-1alpha. From this analysis, the species separated into five clades. Species of Issatchenkia are members of the Pichia membranifaciens clade and are proposed for transfer to Pichia. Pichia dryadoides and Pichia quercuum are basal members of the genus Starmera. Williopsis species are dispersed among hat-spored taxa in each of the remaining three clades, which are proposed as the new genera Barnettozyma, Lindnera and Wickerhamomyces. Lineages previously classified as varieties of Pichia kluyveri, 'Issatchenkia'scutulata, Starmera amethionina and 'Williopsis'saturnus are elevated to species rank based on sequence comparisons.
KeywordMeSH Terms
Phylogeny
Pichia
Saccharomycetales
Sequence Analysis, DNA
3. Grigoriev  IV, Jeffries  TW, Riley  R, Haridas  S, Wolfe  KH, Lopes  MR, Hittinger  CT, Göker  M, Salamov  AA, Wisecaver  JH, Long  TM, Calvey  CH, Aerts  AL, Barry  KW, Choi  C, Clum  A, Coughlan  AY, Deshpande  S, Douglass  AP, Hanson  SJ, Klenk  HP, LaButti  KM, Lapidus  A, Lindquist  EA, Lipzen  AM, Meier-Kolthoff  JP, Ohm  RA, Otillar  RP, Pangilinan  JL, Peng  Y, Rokas  A, Rosa  CA, Scheuner  C, Sibirny  AA, Slot  JC, Stielow  JB, Sun  H, Kurtzman  CP, Blackwell  M,     ( 2016 )

Comparative genomics of biotechnologically important yeasts.

Proceedings of the National Academy of Sciences of the United States of America 113 (35)
PMID : 27535936  :   DOI  :   10.1073/pnas.1603941113     PMC  :   PMC5024638    
Abstract >>
Ascomycete yeasts are metabolically diverse, with great potential for biotechnology. Here, we report the comparative genome analysis of 29 taxonomically and biotechnologically important yeasts, including 16 newly sequenced. We identify a genetic code change, CUG-Ala, in Pachysolen tannophilus in the clade sister to the known CUG-Ser clade. Our well-resolved yeast phylogeny shows that some traits, such as methylotrophy, are restricted to single clades, whereas others, such as l-rhamnose utilization, have patchy phylogenetic distributions. Gene clusters, with variable organization and distribution, encode many pathways of interest. Genomics can predict some biochemical traits precisely, but the genomic basis of others, such as xylose utilization, remains unresolved. Our data also provide insight into early evolution of ascomycetes. We document the loss of H3K9me2/3 heterochromatin, the origin of ascomycete mating-type switching, and panascomycete synteny at the MAT locus. These data and analyses will facilitate the engineering of efficient biosynthetic and degradative pathways and gateways for genomic manipulation.
KeywordMeSH Terms
bioenergy
biotechnological yeasts
genetic code
genomics
microbiology
4. Isobe  K, Miki  S, Ueda  R, Shichida  S, Matsui  D, Oku  Y, Asano  Y,     ( 2018 )

Characterization of two carbonyl reductases from Ogataea polymorpha NBRC 0799.

Applied microbiology and biotechnology 102 (3)
PMID : 29238872  :   DOI  :   10.1007/s00253-017-8668-8    
Abstract >>
The enzyme responsible for the enantioselective production of (S)-1,1,1-trifluoro-2-propanol ((S)-TFP) from 1,1,1-trifluoroacetone (TFA) has been identified in Ogataea polymorpha NBRC 0799. We purified two carbonyl reductases, OpCRD-A and OpCRD-B from this strain, and revealed their characteristics. Both enzymes were specific to NADH, but the following characteristics were different: The molecular mass of subunit OpCRD-A was 40 kDa and that of OpCRD-B was 43 kDa. Amino acid sequences of both enzymes were only 21% identical. OpCRD-B contained 4 mol of zinc per mole of enzyme, but OpCRD-A did not. The optimal pH, temperature, pH stability, thermostability, and inhibitor specificity were also remarkably different. With regard to substrate specificity, both enzymes exhibited high reductase activity toward a wide variety of ketones, aldehydes and fluoroketones, and dehydrogenase activity toward 2-propanol and 2-butanol. The reductase activity was much higher than the dehydrogenase activity at acidic pH. OpCRD-A enantioselectively produced (S)-TFP from TFA, but OpCRD-B preferentially produced (R)-TFP. Thus, we concluded that OpCRD-A plays the main role in the production of (S)-TFP by a reaction of O. polymorpha NBRC 0799 cells and that OpCRD-A has great potential for efficient production of (S)-TFP, as it is an S-specific enzyme and does not catalyze the dehydrogenation of (S)-TFP.
KeywordMeSH Terms
(S)-1,1,1-Trifluoro-2-propanol
1,1,1-Trifluoroacetone
Alcohol dehydrogenase
Carbonyl reductase
Ogataea polymorpha

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