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Transcriptome of Dickeya dadantii Infecting Acyrthosiphon pisum Reveals a Strong Defense against Antimicrobial Peptides

机译:Dickeya dadantii的转录组感染了丙酮酸丙酮酸杆菌,显示出对抗菌肽的强大防御能力

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摘要

The plant pathogenic bacterium Dickeya dadantii has recently been shown to be able to kill the aphid Acyrthosiphon pisum. While the factors required to cause plant disease are now well characterized, those required for insect pathogeny remain mostly unknown. To identify these factors, we analyzed the transcriptome of the bacteria isolated from infected aphids. More than 150 genes were upregulated and 300 downregulated more than 5-fold at 3 days post infection. No homologue to known toxin genes could be identified in the upregulated genes. The upregulated genes reflect the response of the bacteria to the conditions encountered inside aphids. While only a few genes involved in the response to oxidative stress were induced, a strong defense against antimicrobial peptides (AMP) was induced. Expression of a great number of efflux proteins and transporters was increased. Besides the genes involved in LPS modification by addition of 4-aminoarabinose (the arnBCADTEF operon) and phosphoethanolamine (pmrC, eptB) usually induced in Gram negative bacteria in response to AMPs, dltBAC and pbpG genes, which confer Gram positive bacteria resistance to AMPs by adding alanine to teichoic acids, were also induced. Both types of modification confer D. dadantii resistance to the AMP polymyxin. A. pisum harbors symbiotic bacteria and it is thought that it has a very limited immune system to maintain these populations and do not synthesize AMPs. The arnB mutant was less pathogenic to A. pisum, which suggests that, in contrast to what has been supposed, aphids do synthesize AMP.
机译:最近已证明植物病原细菌Dickeya dadantii能够杀死蚜虫蚜虫(Acyrthosiphon pisum)。尽管现在已经很好地确定了引起植物病害所需的因素,但是昆虫病原体所需的因素仍然几乎是未知的。为了确定这些因素,我们分析了从感染的蚜虫中分离出的细菌的转录组。感染后3天,有150多个基因被上调,而300个基因被下调了5倍以上。在上调的基因中未鉴定出与已知毒素基因的同源物。上调的基因反映了细菌对蚜虫内部条件的反应。虽然仅诱导了几个参与氧化应激反应的基因,但诱导了对抗菌肽(AMP)的强大防御作用。大量外排蛋白和转运蛋白的表达增加。除了通过添加4-氨基阿拉伯糖(arnBCADTEF操纵子)和磷酸乙醇胺(pmrC,eptB)参与LPS修饰的基因外,它们通常在革兰氏阴性菌中响应AMPs,dltBAC和pbpG基因而被诱导,从而赋予革兰氏阳性细菌对AMPs的抗性还诱导了在硫代酸中添加丙氨酸。两种类型的修饰均赋予D. dadantii对AMP多粘菌素的抗性。 pisum含有共生细菌,人们认为它的免疫系统非常有限,无法维持这些种群并且不合成AMPs。 arnB突变体对Pisum。A. Pisum的致病性较小,这表明与假定的相反,蚜虫确实可以合成AMP。

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