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Pythium

Cundida pulcherrima IFO 0964 60% d.Th. Curvularia lunata NRRl, 23801 Didymellu lycopersici ATL C 118471 Didymella lycopersici, conidia4 Epicoccum oryzae5 Pseudomonas fluorescens6 Pythium ultimum1... [Pg.760]

Pseudomonas fluorescens Fll3 2,4-Diacetylphlo roglucinol Pythium ultimum, Fusarium oxysporum, Phoma beta, Rhizopus stolonifera Sugarbeet Damping-off 117... [Pg.109]

Pseudomonas fluorescens Pf-5 Pyrrolnitrin, pyoluteorinl Pythium ultimum, Rhizocto-nia solani Cotton Damping-off 119,120... [Pg.109]

C. R. Howell and R. D. Stipanovic, Suppression of Pythium ultimum-induced damp-itig-off of cotton seedlings by Pseudomonas fluorescens and its antibiotic pyolu-teorin. Phytopathology 70 712 (1980). [Pg.132]

Field soil solarization was effective in dramatically reducing or completely eliminating the infection of Pythium spp. in carrot (Daucus carota L.) and strawberry roots (Becker and Wrona 1995 Pinkerton et al. 2002), as well as reduced inoculum levels of P. aphanidermatum in watermelon and potato down to 25-30 cm soil depth (Mansoori and Jaliani 1996 Triki et al. 2001). Summer soil solarization in greenhouse reduced Pythium root rot even in the temperate climate of Denmark (Christensen and Thinggaard 1999). [Pg.234]

Chellemi DO (2006) Effect of urban plant debris and soil management practices on plant parasitic nematodes Phytophthora blight and Pythium root rot of bell pepper. Crop Prot 25 1109-1116. doi 10.1016/j.cropro.2006.02.012... [Pg.255]

Christensen LK, Thinggaard K (1999) Solarization of greenhouse soil for prevention of Pythium root rot in organically grown cucumber. J Plant Pathol 81 137-144 Chun D, Lockwood JL (1985) Reduction of Pythium ultimum, Thielaviopsis basicola, and Macrophomina phaseolina populations in soil associated with ammonia generated from urea. Plant Dis 69 154-158... [Pg.256]

Patricio FRA, Kimati H, Tessarioli Neto J, Petenatti A, Barros BC (2007) Efeito da solarizagao, associada a aplicagao de Trichoderma spp. Ou fungicidas, sobre o controle de Pythium aphanidermatum e de Khizoctoriia solani AG-4. Summa Phytopathol 33 142-146. doi 10.1590/ S0100-54052007000200007... [Pg.267]

Pullman GS, DeVay JE, Garber RH, Weinhold AR (1981b) Soil solarization Effects on Verticillium wilt of cotton and soilbome populations of Verticillium dahliae, Pythium spp., Rhizoctonia solani, and Thielaviopsis basicola. Phytopathology 71 954-959 Rabinowitch HD, Katan J, Ben David B, Rotem L, Zig U (1985) Soil solarization in onion effects in successive years. Hassadeh 65 1792... [Pg.268]

ROS production by an extracellular agar oligosaccharide oxidase Appressoria formation in the specific pathogenic oomycete Pythium porpyrae... [Pg.251]

Toth GB, Pavia H (2000) Water-borne cues induce chemical defense in a marine algaAscophyllum nodosum. Proc Natl Acad Sci USA 97 14418-14420 Uppalapaati SR, Fujita Y (2000) Carbohydrate regulation of attachment, encystment, and appres-sorium formation by Pythium porphyrae (Oomycota) zoospores on Porphyra yezoensis (Rhodophyta). J Phycol 36 359-366... [Pg.270]

Fig. 2.3 HPLC analysis of ginsenosides recovered from the spent medium of Trichoderma hamatum and Pythium irregulare isolates. A ginsenoside mixture extracted from 3-year-old ginseng roots was added to the culture medium of both T. hamatum and Pythium irregulare, recovered after several days of incubation and analyzed by HPLC. The profile of ginsenosides added to the culture medium (a) included ginsenosides Rgi, Re, Rbi, Rba, Rc, Rd, and F2, as well as gypenoside XVII (G-XVII). (b-e) Profiles of ginsenosides recovered from T. hamatum isolate 3-323 (b), and Pythium irregulare isolates BR 486 (c), BR 598 (d), and BR 1068 (e). Fig. 2.3 HPLC analysis of ginsenosides recovered from the spent medium of Trichoderma hamatum and Pythium irregulare isolates. A ginsenoside mixture extracted from 3-year-old ginseng roots was added to the culture medium of both T. hamatum and Pythium irregulare, recovered after several days of incubation and analyzed by HPLC. The profile of ginsenosides added to the culture medium (a) included ginsenosides Rgi, Re, Rbi, Rba, Rc, Rd, and F2, as well as gypenoside XVII (G-XVII). (b-e) Profiles of ginsenosides recovered from T. hamatum isolate 3-323 (b), and Pythium irregulare isolates BR 486 (c), BR 598 (d), and BR 1068 (e).
Yousef LF, Bernards MA (2006) In vitro metabohsm of ginsenosides by the ginseng root pathogen Pythium irregulare. Phytochemistry 67 1740... [Pg.31]

Neculai MA et al (2009) Partial purification and characterization of three ginsenoside-metabolizing b-glucosidases from Pythium irregulare. Phytochemistry 70 1948... [Pg.31]

Huet JC et al (1995) The relationships between the toxicity and the primary and secondary structures of elicitin-hke protein elicitors secreted by the phytopathogenic fungus Pythium vexans. Mol Plant Microbe Interact 8 302... [Pg.32]

Harvey PJ et al (2001) Genetic and pathogenic variation among cereal, medic and sub-clover isolates of Pythium irregulare. Mycological Res 105 85... [Pg.32]

Sewell GWF (1981) Effects of Pythium species on the growth of apple and their possible role in replant disease. Annals Appl Biol 97 31... [Pg.32]


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