Abstract
Take-all, caused by Gaeumannomyces graminis var. tritici, is one of the most important fungal diseases of wheat worldwide. Knowing that microbe-based suppression of the disease occurs in monoculture wheat fields following severe outbreaks of take-all, we analyzed the changes in rhizosphere bacterial communities following infection by the take-all pathogen. Several bacterial populations were more abundant on diseased plants than on healthy plants, as indicated by higher counts on a Pseudomonas-selective medium and a higher fluorescence signal in terminal restriction fragment length polymorphism analyses of amplified 16S ribosomal DNA (rDNA). Amplified rDNA restriction analysis (ARDRA) of the most abundant cultured populations showed a shift in dominance from Pseudomonas to Chryseobacterium species in the rhizosphere of diseased plants. Fluorescence-tagged ARDRA of uncultured rhizosphere washes revealed an increase in ribotypes corresponding to several bacterial genera, including those subsequently identified by partial 16S sequencing as belonging to species of alpha-, beta-, and gamma-proteobacteria, sphingobacteria, and flavobacteria. The functional significance of some of these populations was investigated in vitro. Of those isolated, only a small subset of the most abundant Pseudomonas spp. and a phlD(+) Pseudomonas sp. showed any significant ability to inhibit G. graminis var. tritici directly. When cultured strains were mixed with the inhibitory phlD(+) Pseudomonas strain, the Chryseobacterium isolates showed the least capacity to inhibit this antagonist of the pathogen, indicating that increases in Chryseobacterium populations may facilitate the suppression of take-all by 2,4-diacetylphloroglucinol-producing phlD(+) pseudomonads.
MeSH Terms
Antibiosis
Ascomycota/physiology
Bacteria/classification,genetics,growth & development,isolation & purification
Colony Count, Microbial
DNA, Ribosomal/analysis,genetics
Molecular Sequence Data
Phloroglucinol/analogs & derivatives,metabolism
Plant Diseases/microbiology
Plant Roots/microbiology
Pseudomonas/classification,genetics,growth & development,isolation & purification
RNA, Ribosomal, 16S/genetics
Restriction Mapping/methods
Sequence Analysis, DNA
Soil Microbiology
Triticum/microbiology
Chemicals
DNA, Ribosomal
RNA, Ribosomal, 16S
2,4-diacetylphloroglucinol
Phloroglucinol
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
McSpadden Gardener B B
Root Disease and Biological Control Research Unit, USDA Agricultural Research Service, Pullman, Washington, USA.
Weller D M
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