Repeated Introduction of Genetically Modified Pseudomonas putida WCS358r without Intensified Effects on the Indigenous Microflora of Field-Grown Wheat
暂无分享,去创建一个
P. Bakker | D. Glandorf | E. Smit | L. C. van Loon | L. Thomashow | K. Wernars | M. Viebahn | P. Leeflang | T. Ouwens | P. A. H. M. Bakker | Eric Smit | Paula Leeflang | L. C. V. Loon
[1] P. Bakker,et al. The role of siderophores in potato tuber yield increase by Pseudomonas putida in a short rotation of potato , 1986, Netherlands Journal of Plant Pathology.
[2] G. Bollen. A comparison of the in vitro antifungal spectra of thiophanates and benomyl , 1972, Netherlands Journal of Plant Pathology.
[3] M. Zala,et al. Biocontrol of soil-borne fungal plant diseases by 2,4-diacetylphloroglucinol-producing fluorescent pseudomonads with different restriction profiles of amplified 16S rDNA , 1998, European Journal of Plant Pathology.
[4] P. Bakker,et al. Stability of rifampicin resistance as a marker for root colonization studies of Pseudomonas putida in the field , 1992, Plant and Soil.
[5] B. M. Gardener,et al. Microbial populations responsible for specific soil suppressiveness to plant pathogens. , 2002, Annual review of phytopathology.
[6] P. Bakker,et al. Effect of Genetically Modified Pseudomonas putida WCS358r on the Fungal Rhizosphere Microflora of Field-Grown Wheat , 2001, Applied and Environmental Microbiology.
[7] F. O'Gara,et al. Pseudomonas for biocontrol of phytopathogens: from functional genomics to commercial exploitation. , 2001, Current opinion in biotechnology.
[8] S. Sørensen,et al. Effect of Genomic Location on Horizontal Transfer of a Recombinant Gene Cassette Between Pseudomonas Strains in the Rhizosphere and Spermosphere of Barley Seedlings , 2001, Current Microbiology.
[9] M. Bailey,et al. Chromosomal insertion of phenazine-1-carboxylic acid biosynthetic pathway enhances efficacy of damping-off disease control by Pseudomonas fluorescens. , 2000, Molecular plant-microbe interactions : MPMI.
[10] F. Ekelund,et al. Population dynamics of the fast-growing sub-populations of Pseudomonas and total bacteria, and their protozoan grazers, revealed by fenpropimorph treatment , 2000 .
[11] S. Alström,et al. Characterisation of bacteria in soils under barley monoculture and crop rotation , 2000 .
[12] Sandra L. Maldonado-Ramírez,et al. METHODS FOR ASSESSING THE COMPOSITION AND DIVERSITY OF SOIL MICROBIAL COMMUNITIES , 2000 .
[13] H. Backhaus,et al. Variation of Microbial Rhizosphere Communities in Response to Crop Species, Soil Origin, and Inoculation with Sinorhizobium meliloti L33 , 2000, Microbial Ecology.
[14] C. Keel,et al. Biocontrol ability of fluorescent pseudomonads genetically dissected: importance of positive feedback regulation. , 2000, Current opinion in biotechnology.
[15] G. Défago,et al. Nutrient deprivation and the subsequent survival of biocontrol Pseudomonas fluorescens CHA0 in soil , 1999 .
[16] E. Smit,et al. Analysis of Fungal Diversity in the Wheat Rhizosphere by Sequencing of Cloned PCR-Amplified Genes Encoding 18S rRNA and Temperature Gradient Gel Electrophoresis , 1999, Applied and Environmental Microbiology.
[17] C. Pieterse,et al. Differential induction of systemic resistance in Arabidopsis by biocontrol bacteria. , 1997, Molecular plant-microbe interactions : MPMI.
[18] L. Overbeek,et al. Induced Reporter Gene Activity, Enhanced Stress Resistance, and Competitive Ability of a Genetically Modified Pseudomonas fluorescens Strain Released into a Field Plot Planted with Wheat. , 1997 .
[19] L. Thomashow,et al. Frequency of Antibiotic-Producing Pseudomonas spp. in Natural Environments , 1997, Applied and environmental microbiology.
[20] L. Thomashow,et al. Quantification of 2,4-Diacetylphloroglucinol Produced by Fluorescent Pseudomonas spp. In Vitro and in the Rhizosphere of Wheat , 1997, Applied and environmental microbiology.
[21] P. Bodelier. Nitrification and denitrification in the root zone of Glyceria maxima: 'The plant gives ... the plant takes' , 1997 .
[22] J. Handelsman,et al. Biocontrol of Soilborne Plant Pathogens. , 1996, The Plant cell.
[23] N. Pace,et al. Identifying microbial diversity in the natural environment: a molecular phylogenetic approach. , 1996, Trends in biotechnology.
[24] Bangera Mg,et al. Characterization of a genomic locus required for synthesis of the antibiotic 2,4-diacetylphloroglucinol by the biological control agent Pseudomonas fluorescens Q2-87. , 1996 .
[25] J. Lynch,et al. Impact of Field Release of Genetically Modified Pseudomonas fluorescens on Indigenous Microbial Populations of Wheat , 1995, Applied and environmental microbiology.
[26] P. Lemanceau,et al. Effect of Two Plant Species, Flax (Linum usitatissinum L.) and Tomato (Lycopersicon esculentum Mill.), on the Diversity of Soilborne Populations of Fluorescent Pseudomonads , 1995, Applied and environmental microbiology.
[27] P. Bakker,et al. Dose-response relationships in biological control of fusarium wilt of radish by Pseudomonas spp. , 1995 .
[28] Inderjit,et al. Role of secondary metabolites in root disease suppression. , 1995 .
[29] A. W. Stienstra,et al. Repression of nitrification in soils under a climax grassland vegetation , 1994 .
[30] P. Bakker,et al. Suppression of fusarium wilt of carnation by Pseudomonas putida WCS358 at different levels of disease incidence and iron availability , 1994 .
[31] P. Bakker,et al. Crop specificity of rhizosphere pseudomonads and the involvement of root agglutinins , 1993 .
[32] Cook Rj. Making greater use of introduced microorganisms for biological control of plant pathogens. , 1993 .
[33] J. D. van Elsas,et al. Rapid DNA extraction protocol from soil for polymerase chain reaction‐mediated amplification , 1993 .
[34] R. Cook. Making greater use of introduced microorganisms for biological control of plant pathogens. , 1993, Annual review of phytopathology.
[35] M. Mazzola,et al. Contribution of phenazine antibiotic biosynthesis to the ecological competence of fluorescent pseudomonads in soil habitats , 1992, Applied and environmental microbiology.
[36] L. Thomashow,et al. Cloning and heterologous expression of the phenazine biosynthetic locus from Pseudomonas aureofaciens 30-84. , 1992, Molecular plant-microbe interactions : MPMI.
[37] R. Cook. Wheat root health management and environmental concern , 1992 .
[38] C. Keel,et al. Influence of enhanced antibiotic production in pseudomonas fluorescens strain cha0 on its disease suppressive capacity , 1992 .
[39] C. Keel,et al. Suppression of root diseases by Pseudomonas fluorescens CHA0 - importance of the bacterial seconday metabolite 2,4-diacetylphloroglucinol , 1992 .
[40] V. de Lorenzo,et al. Transposon vectors containing non-antibiotic resistance selection markers for cloning and stable chromosomal insertion of foreign genes in gram-negative bacteria , 1990, Journal of bacteriology.
[41] Robert J. Kremer,et al. Characterization of Rhizobacteria Associated with Weed Seedlings , 1990, Applied and environmental microbiology.
[42] R. Amann,et al. Combination of 16S rRNA-targeted oligonucleotide probes with flow cytometry for analyzing mixed microbial populations , 1990, Applied and environmental microbiology.
[43] E. Stackebrandt,et al. Reverse transcriptase sequencing of 16S ribosomal RNA from Faenia rectivirgula, Pseudonocardia thermophila and Saccharopolyspora hirsuta, three wall type IV actinomycetes which lack mycolic acids. , 1988, Journal of general microbiology.
[44] Peter A. H. M. Bakker,et al. Interactions of Deleterious and Beneficial Rhizosphere Microorganisms and the Effect of Cropping Practices , 1987 .
[45] J. Sambrook,et al. Molecular Cloning: A Laboratory Manual , 2001 .
[46] B. Schippers,et al. Reduction of Yield Depressions in High Frequency Potato Cropping Soil after Seed Tuber Treatments with Antagonistic Fluorescent Pseudomonas spp. , 1983 .
[47] R. Cook,et al. Suppression of take-all of wheat by seed treatments with fluorescent pseudomonads. , 1983 .
[48] R. Atlas,et al. Microbial Ecology: Fundamentals and Applications. , 1982 .
[49] H. Komada,et al. Development of a selective medium for quantitative isolation of Fusarium oxysporum from natural soil. , 1975 .
[50] King Eo,et al. Two simple media for the demonstration of pyocyanin and fluorescin. , 1954 .
[51] E. King,et al. Two simple media for the demonstration of pyocyanin and fluorescin. , 1954, The Journal of laboratory and clinical medicine.