Molecular Characterization and Identification of Biocontrol Isolates of <i>Trichoderma</i> spp

  • M. R. Hermosa
    <!--label omitted: 1-->Departamento de Microbiologı́a y Genética, CSIC/Universidad de Salamanca, 37002 Salamanca, Spain
  • I. Grondona
    <!--label omitted: 1-->Departamento de Microbiologı́a y Genética, CSIC/Universidad de Salamanca, 37002 Salamanca, Spain
  • E. A. Iturriaga
    <!--label omitted: 1-->Departamento de Microbiologı́a y Genética, CSIC/Universidad de Salamanca, 37002 Salamanca, Spain
  • J. M. Diaz-Minguez
    <!--label omitted: 1-->Departamento de Microbiologı́a y Genética, CSIC/Universidad de Salamanca, 37002 Salamanca, Spain
  • C. Castro
    <!--label omitted: 1-->Departamento de Microbiologı́a y Genética, CSIC/Universidad de Salamanca, 37002 Salamanca, Spain
  • E. Monte
    <!--label omitted: 1-->Departamento de Microbiologı́a y Genética, CSIC/Universidad de Salamanca, 37002 Salamanca, Spain
  • I. Garcia-Acha
    <!--label omitted: 1-->Departamento de Microbiologı́a y Genética, CSIC/Universidad de Salamanca, 37002 Salamanca, Spain

書誌事項

公開日
2000-05
権利情報
  • https://journals.asm.org/non-commercial-tdm-license
DOI
  • 10.1128/aem.66.5.1890-1898.2000
公開者
American Society for Microbiology

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説明

<jats:title>ABSTRACT</jats:title> <jats:p> The most common biological control agents (BCAs) of the genus <jats:italic>Trichoderma</jats:italic> have been reported to be strains of <jats:italic>Trichoderma virens</jats:italic> , <jats:italic>T. harzianum</jats:italic> , and <jats:italic>T. viride</jats:italic> . Since <jats:italic>Trichoderma</jats:italic> BCAs use different mechanisms of biocontrol, it is very important to explore the synergistic effects expressed by different genotypes for their practical use in agriculture. Characterization of 16 biocontrol strains, previously identified as “ <jats:italic>Trichoderma harzianum</jats:italic> ” Rifai and one biocontrol strain recognized as <jats:italic>T. viride</jats:italic> , was carried out using several molecular techniques. A certain degree of polymorphism was detected in hybridizations using a probe of mitochondrial DNA. Sequencing of internal transcribed spacers 1 and 2 (ITS1 and ITS2) revealed three different ITS lengths and four different sequence types. Phylogenetic analysis based on ITS1 sequences, including type strains of different species, clustered the 17 biocontrol strains into four groups: <jats:italic>T. harzianum-T. inhamatum</jats:italic> complex, <jats:italic>T. longibrachiatum</jats:italic> , <jats:italic>T. asperellum</jats:italic> , and <jats:italic>T. atroviride-T. koningii</jats:italic> complex. ITS2 sequences were also useful for locating the biocontrol strains in <jats:italic>T. atroviride</jats:italic> within the complex <jats:italic>T. atroviride-T. koningii</jats:italic> . None of the biocontrol strains studied corresponded to biotypes Th2 or Th4 of <jats:italic>T. harzianum</jats:italic> , which cause mushroom green mold. Correlation between different genotypes and potential biocontrol activity was studied under dual culturing of 17 BCAs in the presence of the phytopathogenic fungi <jats:italic>Phoma betae</jats:italic> , <jats:italic>Rosellinia necatrix</jats:italic> , <jats:italic>Botrytis cinerea</jats:italic> , and <jats:italic>Fusarium oxysporum</jats:italic> f. sp. <jats:italic>dianthi</jats:italic> in three different media. </jats:p>

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