Phylogenetic Analysis of Pleurotus Species Based on the Nuclear SSU rRNA Sequences

Phylogenetic Analysis of Pleurotus Species Based on the Nuclear SSU rRNA Sequences

  • Published : 1996.03.01

Abstract

The internal regions of nuclear small subunit rRNA from 6 plaeurotus species and 5 Pleurotus ostreatus strains were amplified by PCR and sequenced. The DNA sequences of 8 Pleurotus strains (P. ostreatus NFFA2, NFFA4501, NFFA4001, KFFA4001, KFCC11635, P florida, P. florida, P. sajor-cuju, P. pulmonarius, and P. spodoleucus) were idential, but P. cornucopiae differed from them in two bases out of 605 bases. However, p[hylogenetic analysis of the sequences by DNA-distance matrix and UPGMA methods showed that P. ostreatus NFFA2m1 and NFFA2m2, known as mutants of P. ostreatus NFFA2, belonged to anther group of Basidiomycotina, which is close to the genus Auricularia. The difference of the SSU rDNA sequences of P. cornucopiae from other Pleurotus species tested corresponds to the difference of mitochondrial plasmid type present in Pleurotus species as observed by Kim et al. (1993, Korean J. Microbiol. 31, 141-147).ishement of silencing at the HMR/hsp82 locus can occur in G1-arrested cells. Cell cycle arrest at G1 phase was achieved by treatment of early log a cell cultures with .alpha.-factor mating pheromone, which induces G1 arrest. The result suggests that passage through S phase (and therefore DNA replication) is nor required for re-establishing silencer-mediated repression at the HMNRa/HSP82 locus. Finally, to test whether de nono protein synthesis is required for re-establishment of silencer-mediated repression, cells were pretreated with cycloheximide (500 /.mu.g/ml) 120 min. It was apparent that inhibiting protein synthesis delays, but does not prevent, re-establishment of silencer-mediated repression. Altogether, these results indicate that re-establishment of silencer-mediated repression is not dependent on the DNA replication and has no requirement for protein synthesis.

Keywords

References

  1. Biochim. Biophys, Acta. v.1251 Structures of genomic and complementary DNAs coding for Pleurotus ostreatus manganese(Ⅱ) peroxidase Asada, Y.;A. Watanabe;T. Irie;T. Nakayama;M. Kuwahara
  2. Appl. Environ. Microbiol. v.61 Cloning and sequencing of a laccase gene from the lignin-degrading basidiomycetes Pleurotus ostreatus Giardina, P.;R. Cannio;L. Martirani;L. Marzullo;G. Palmieri;G. Sannia
  3. Gene. v.89 Characterization of lignin peroxidase-encoding genes from lignin degrading basidiomycetes Huoponen, K.;P. Ollikka;M. Kalin;I. Walther;P. Mantsala;J. Reiser
  4. Korean J. Microbiol. v.31 Characterization of mitochondrial plasmids from Pleurotus spp. Kim, E.K.;Y.B. Koo;D.Y. Cha;Y.C. Hah;J.H. Roe
  5. Curr. Genet. v.22 Recovery of recombinant plasmids from Pleurotus ostreatus Peng, M.;N.K. Singh;P.A. Lemke
  6. Eur. J. Biochem v.215 Purification and characterization of D-Glucose oxidase from white-rot fungus Pleurotus ostreatus Shin, K.S.;H.D. Youn;Y.H. Han;S.O. Kang;Y.C. Hah
  7. PCR protocols. A guide to methods and applications-1990 Amplification and direct sequencing of fungal ribosomal RNA genes for phylogenetics White, T.J.;T. Burns;S. Lee;J. Taylor;M.A. Innis(ed.);D.H. Gelfand(ed.);J.J. Sninsky(ed.);T.J. White(ed.)
  8. Microbiology v.141 Single electron transfer by an extracellular laccase from the white-rot fungus Pleurotus ostreatus Youn, H.D.;K.J. Kim;J.S. Maeng;Y.H. Han;I.B. Jeong;G. Jeong;S.O. Kang;Y.C. Hah