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拟南芥叶片转录组揭示了对叶际共生菌定殖和病原体感染的不同但又重叠的反应,这些反应对植物健康有影响。

The Arabidopsis leaf transcriptome reveals distinct but also overlapping responses to colonization by phyllosphere commensals and pathogen infection with impact on plant health.

作者信息

Vogel Christine, Bodenhausen Natacha, Gruissem Wilhelm, Vorholt Julia A

机构信息

Department of Biology, Institute of Microbiology, ETH Zurich, 8093, Zurich, Switzerland.

Department of Biology, Institute of Agricultural Sciences, ETH Zurich, 8092, Zurich, Switzerland.

出版信息

New Phytol. 2016 Oct;212(1):192-207. doi: 10.1111/nph.14036. Epub 2016 Jun 16.

DOI:10.1111/nph.14036
PMID:27306148
Abstract

Plants are colonized by a variety of bacteria, most of which are not pathogenic. Currently, the plant responses to phyllosphere commensals or to pathogen infection in the presence of commensals are not well understood. Here, we examined the transcriptional response of Arabidopsis thaliana leaves to colonization by common commensal bacteria in a gnotobiotic system using RNA sequencing and conducted plant mutant assays. Arabidopsis responded differently to the model bacteria Sphingomonas melonis Fr1 (S.Fr1) and Methylobacterium extorquens PA1 (M.PA1). Whereas M.PA1 only marginally affected the expression of plant genes (< 10), S.Fr1 colonization changed the expression of almost 400 genes. For the latter, genes related to defense responses were activated and partly overlapped with those elicited by the pathogen Pseudomonas syringae DC3000 (Pst). As S.Fr1 is able to mediate plant protective activity against Pst, we tested plant immunity mutants and found that the pattern-recognition co-receptor mutant bak1/bkk1 showed attenuated S.Fr1-dependent plant protection. The experiments demonstrate that the plant responds differently to members of its natural phyllosphere microbiota. A subset of commensals trigger expression of defense-related genes and thereby may contribute to plant health upon pathogen encounter.

摘要

植物会被多种细菌定殖,其中大多数并非致病细菌。目前,对于植物对叶际共生菌的反应,或者在存在共生菌的情况下对病原体感染的反应,人们还了解得不够透彻。在此,我们在无菌系统中使用RNA测序技术,研究了拟南芥叶片对常见共生细菌定殖的转录反应,并进行了植物突变体分析。拟南芥对模式细菌甜瓜鞘氨醇单胞菌Fr1(S.Fr1)和扭脱甲基杆菌PA1(M.PA1)的反应有所不同。M.PA1仅对植物基因的表达有轻微影响(<10个),而S.Fr1定殖则改变了近400个基因的表达。对于后者,与防御反应相关的基因被激活,并且部分与由病原体丁香假单胞菌DC3000(Pst)引发的基因重叠。由于S.Fr1能够介导植物对Pst的保护活性,我们对植物免疫突变体进行了测试,发现模式识别共受体突变体bak1/bkk1表现出减弱的S.Fr1依赖性植物保护作用。这些实验表明,植物对其自然叶际微生物群的成员反应不同。一部分共生菌会触发防御相关基因的表达,从而在遇到病原体时可能有助于植物健康。

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