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鉴定丁香假单胞菌的海藻糖生物合成基因座及其对叶围生境适应性的贡献。

Identification of the trehalose biosynthetic loci of Pseudomonas syringae and their contribution to fitness in the phyllosphere.

机构信息

Department of Plant Pathology, Iowa State University, Ames, IA 50011, USA.

出版信息

Environ Microbiol. 2010 Jun;12(6):1486-97. doi: 10.1111/j.1462-2920.2010.02171.x. Epub 2010 Feb 18.

Abstract

Surprisingly little is known of the trehalose biosynthetic pathways in pseudomonads, despite the importance of trehalose to protecting cells from environmental stresses such as low water availability. The genome of the foliar pathogen Pseudomonas syringae pv. tomato strain DC3000 contains genes for two trehalose biosynthetic pathways, TreS and TreYZ, and lacks genes for the more common OtsAB pathway. Deletion of either the treS (PSPTO_2760-2762) or treY/treZ (PSPTO_3125-3134) locus eliminated trehalose accumulation and reduced bacterial growth under hyperosmotic conditions. In evaluating the role of trehalose in P. syringae fitness on leaves, we found that a double deletion mutant lacking these loci exhibited poorer survival than the wild type on tomato leaves over a 2-week period in a growth chamber. Similarly, this mutant exhibited reduced survival on leaves of susceptible and resistant cultivars of the host plant tomato and of the non-host plant soybean over a 10-day period in field plots. Thus, the trehalose biosynthetic loci in P. syringae, which are highly conserved among pseudomonads, contributed to DC3000 fitness on leaves, supporting a role for trehalose in P. syringae survival and population maintenance in the phyllosphere.

摘要

尽管海藻糖对保护细胞免受低水分等环境压力非常重要,但假单胞菌中海藻糖生物合成途径的知识却知之甚少。叶病原菌丁香假单胞菌 pv.番茄菌株 DC3000 的基因组包含两条海藻糖生物合成途径的基因,TreS 和 TreYZ,并且缺乏更为常见的 OtsAB 途径的基因。缺失 treS(PSPTO_2760-2762)或 treY/treZ(PSPTO_3125-3134)基因座会消除海藻糖的积累,并在高渗条件下降低细菌的生长。在评估海藻糖在丁香假单胞菌适应叶片方面的作用时,我们发现与野生型相比,缺失这些基因座的双缺失突变体在生长室内番茄叶片上的存活率较低,在两周的时间内。同样,该突变体在田间试验中,在番茄和非宿主植物大豆的易感和抗性品种的叶片上的存活率也降低了 10 天。因此,假单胞菌中高度保守的海藻糖生物合成基因座有助于 DC3000 在叶片上的适应性,支持海藻糖在丁香假单胞菌的存活和在叶际种群维持中的作用。

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