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全球调控网络控制着形成菌瘿的泛菌凝结亚种 pv. 锦葵的 hrp 调控子。

Global regulatory networks control the hrp regulon of the gall-forming bacterium Pantoea agglomerans pv. gypsophilae.

机构信息

Department of Molecular Biology and Ecology of Plants, Tel-Aviv University, Tel-Aviv, Israel.

出版信息

Mol Plant Microbe Interact. 2013 Sep;26(9):1031-43. doi: 10.1094/MPMI-04-13-0097-R.

DOI:10.1094/MPMI-04-13-0097-R
PMID:23745675
Abstract

Gall formation by Pantoea agglomerans pv. gypsophilae is dependent on the hypersensitive response and pathogenicity (hrp) system. Previous studies demonstrated that PagR and PagI, regulators of the quorum-sensing system, induce expression of the hrp regulatory cascade (i.e., hrpXY, hrpS, and hrpL) that activates the HrpL regulon. Here, we isolated the genes of the Gac/Rsm global regulatory pathway (i.e., gacS, gacA, rsmB, and csrD) and of the post-transcriptional regulator rsmA. Our results demonstrate that PagR and PagI also upregulate expression of the Gac/Rsm pathway. PagR acts as a transcriptional activator of each of the hrp regulatory genes and gacA in a N-butanoyl-L-homoserine lactone-dependent manner as shown by gel shift experiments. Mutants of the Gac/Rsm genes or overexpression of rsmA significantly reduced Pantoea agglomerans virulence and colonization of gypsophila. Overexpression of rsmB sRNA abolished gall formation, colonization, and hypersensitive reaction on nonhost plants and prevented transcription of the hrp regulatory cascade, indicating a lack of functional type III secretion system. Expression of rsmB sRNA in the background of the csrD null mutant suggests that CsrD may act as a safeguard for preventing excessive production of rsmB sRNA. Results presented indicate that the hrp regulatory cascade is controlled directly by PagR and indirectly by RsmA, whereas deficiency in RsmA activity is epistatic to PagR induction.

摘要

菜薊伯克霍尔德氏菌 pv. 满天星致菌瘿的形成依赖于超敏反应和致病性(hrp)系统。先前的研究表明,群体感应系统的调控因子 PagR 和 PagI 诱导了 hrp 调控级联(即 hrpXY、hrpS 和 hrpL)的表达,从而激活了 HrpL 调控子。在这里,我们分离了全局调控途径(即 gacS、gacA、rsmB 和 csrD)和转录后调控因子 rsmA 的基因。我们的结果表明,PagR 和 PagI 还上调了 Gac/Rsm 途径的表达。PagR 通过凝胶迁移实验表明,以 N-丁酰基-L-高丝氨酸内酯依赖性的方式作为每个 hrp 调控基因和 gacA 的转录激活因子发挥作用。Gac/Rsm 基因的突变体或 rsmA 的过表达显著降低了菜薊伯克霍尔德氏菌的毒力和对满天星的定殖。rsmB sRNA 的过表达消除了菌瘿的形成、定殖和非寄主植物上的超敏反应,并阻止了 hrp 调控级联的转录,表明缺乏功能性 III 型分泌系统。rsmB sRNA 在 csrD 缺失突变体的背景下的表达表明,CsrD 可能作为防止 rsmB sRNA 过度产生的保护因子。研究结果表明,hrp 调控级联直接受 PagR 控制,间接受 RsmA 控制,而 RsmA 活性的缺乏对 PagR 诱导是上位性的。

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