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丁香假单胞菌丁香致病变种活的非可培养(VBNC)细胞中的基因表达谱分析

Gene Expression Profiling in Viable but Nonculturable (VBNC) Cells of Pseudomonas syringae pv. syringae.

作者信息

Postnikova Olga A, Shao Jonathan, Mock Norton M, Baker Con J, Nemchinov Lev G

机构信息

Molecular Plant Pathology Laboratory, Beltsville Agricultural Research Center, United States Department of Agriculture, Agricultural Research Service Beltsville, MD, USA.

出版信息

Front Microbiol. 2015 Dec 18;6:1419. doi: 10.3389/fmicb.2015.01419. eCollection 2015.

Abstract

Pseudomonas syringae infects diverse crop plants and comprises at least 50 different pathovar strains with different host ranges. More information on the physiological and molecular effects of the host inhibitory environment on the pathogen is needed to develop resistant cultivars. Recently, we reported an in vitro model system that mimics the redox pulse associated with the oxidative burst in plant cells inoculated with Pseudomonas syringae pv. syringae. Using this system, we demonstrated that oxidation of acetosyringone, a major extracellular phenolic compound induced in some plants in response to bacteria, rendered Pseudomonas syringae pv. syringae to a "viable but nonculturable" (VBNC) state. Here we performed a large scale transcriptome profiling of P. s. pv. syringae in the VBNC state induced by acetosyringone treatment and identified bacterial genes and pathways presumably associated with this condition. The findings offer insight into what events occur when bacterial pathogens are first encountered and host defense responses are triggered. The acquired knowledge will improve our understanding of the molecular mechanisms of stress tolerance. We believe that this is the first work on global gene expression profiling of VBNC cells in plant pathogenic bacteria.

摘要

丁香假单胞菌可感染多种农作物,包含至少50种具有不同宿主范围的致病变种菌株。为培育抗病品种,需要更多关于宿主抑制环境对病原体生理和分子影响的信息。最近,我们报道了一种体外模型系统,该系统模拟了接种丁香假单胞菌丁香致病变种的植物细胞中与氧化爆发相关的氧化还原脉冲。利用该系统,我们证明了乙酰丁香酮(一些植物中因细菌诱导产生的主要细胞外酚类化合物)的氧化会使丁香假单胞菌丁香致病变种进入“活的但不可培养”(VBNC)状态。在此,我们对经乙酰丁香酮处理诱导进入VBNC状态的丁香假单胞菌丁香致病变种进行了大规模转录组分析,并鉴定了可能与该状态相关的细菌基因和途径。这些发现为首次遇到细菌病原体并触发宿主防御反应时发生的事件提供了见解。所获得的知识将增进我们对胁迫耐受性分子机制的理解。我们相信,这是关于植物致病细菌中VBNC细胞全基因组表达谱分析的首次研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/67a6/4683178/ffb30a4c7bc0/fmicb-06-01419-g0001.jpg

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