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两种假单胞菌生物防治菌株在番茄根际与植物病原真菌尖孢镰刀菌根腐专化型之间的相互作用。

Interactions in the tomato rhizosphere of two Pseudomonas biocontrol strains with the phytopathogenic fungus Fusarium oxysporum f. sp. radicis-lycopersici.

作者信息

Bolwerk Annouschka, Lagopodi Anastasia L, Wijfjes André H M, Lamers Gerda E M, Chin-A-Woeng Thomas F C, Lugtenberg Ben J J, Bloemberg Guido V

机构信息

Leiden University, Institute of Molecular Plant Sciences, Clusius Laboratory, Wassenaarseweg 64, 2333 AL Leiden, The Netherlands.

出版信息

Mol Plant Microbe Interact. 2003 Nov;16(11):983-93. doi: 10.1094/MPMI.2003.16.11.983.

DOI:10.1094/MPMI.2003.16.11.983
PMID:14601666
Abstract

The fungus Fusarium oxysporum f. sp. radicis-lycopersici causes foot and root rot of tomato plants, which can be controlled by the bacteria Pseudomonas fluorescens WCS365 and P. chlororaphis PCL1391. Induced systemic resistance is thought to be involved in biocontrol by P. fluorescens WCS365. The antifungal metabolite phenazine-1-carboxamide (PCN), as well as efficient root colonization, are essential in the mechanism of biocontrol by P. chlororaphis PCL1391. To understand the effects of bacterial strains WCS365 and PCL1391 on the fungus in the tomato rhizosphere, microscopic analyses were performed using different autofluorescent proteins as markers. Tomato seedlings were inoculated with biocontrol bacteria and planted in an F. oxysporum f. sp. radicis-lycopersici-infested gnotobiotic sand system. Confocal laser scanning microscope analyses of the interactions in the tomato rhizosphere revealed that i) the microbes effectively compete for the same niche, and presumably also for root exudate nutrients; ii) the presence of either of the two bacteria negatively affects infection of the tomato root by the fungus; iii) both biocontrol bacteria colonize the hyphae extensively, which may represent a new mechanism in biocontrol by these pseudomonads; and iv) the production of PCN by P. chlororaphis PCL1391 negatively affects hyphal growth and branching, which presumably affects the colonization and infecting ability of the fungus.

摘要

尖孢镰刀菌番茄根腐专化型会引发番茄植株的根腐病,而荧光假单胞菌WCS365和绿针假单胞菌PCL1391可对其进行控制。诱导系统抗性被认为参与了荧光假单胞菌WCS365的生物防治过程。抗真菌代谢物吩嗪-1-甲酰胺(PCN)以及高效的根部定殖,在绿针假单胞菌PCL1391的生物防治机制中至关重要。为了解细菌菌株WCS365和PCL1391对番茄根际真菌的影响,使用不同的自发荧光蛋白作为标记进行了显微镜分析。将番茄幼苗接种生物防治细菌后,种植在受尖孢镰刀菌番茄根腐专化型侵染的无菌沙质系统中。对番茄根际相互作用的共聚焦激光扫描显微镜分析表明:i)微生物有效地竞争同一生态位,可能也竞争根分泌物中的养分;ii)两种细菌中的任何一种的存在都会对真菌侵染番茄根部产生负面影响;iii)两种生物防治细菌都广泛定殖在菌丝上,这可能代表了这些假单胞菌生物防治的一种新机制;iv)绿针假单胞菌PCL1391产生的PCN会对菌丝生长和分支产生负面影响,这可能会影响真菌的定殖和侵染能力。

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