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代谢失衡对铜绿假单胞菌III型分泌基因表达的影响。

Effect of metabolic imbalance on expression of type III secretion genes in Pseudomonas aeruginosa.

作者信息

Rietsch Arne, Wolfgang Matthew C, Mekalanos John J

机构信息

Department of Microbiology and Molecular Genetics, Harvard Medical School, Boston, Massachusetts 02115, USA.

出版信息

Infect Immun. 2004 Mar;72(3):1383-90. doi: 10.1128/IAI.72.3.1383-1390.2004.

Abstract

The type III secretion system is a dedicated machinery used by many pathogens to deliver toxins directly into the cytoplasm of a target cell. Expression and secretion of the type III effectors are triggered by cell contact. In Pseudomonas aeruginosa and Yersinia spp., expression can be triggered in vitro by removing calcium from the medium. The mechanism underlying either mode of regulation is unclear. Here we characterize a transposon insertion mutant of P. aeruginosa PAO1 that displays a marked defect in cytotoxicity. The insertion is located upstream of several genes involved in histidine utilization and impedes the ability of PAO1 to intoxicate eukaryotic cells effectively in a type III-dependent fashion. This inhibition depends on the presence of histidine in the medium and appears to depend on the excessive uptake and catabolism of histidine. The defect in cytotoxicity is mirrored by a decrease in exoS expression. Other parameters such as growth or piliation are unaffected. The cytotoxicity defect is partially complemented by an insertion mutation in cbrA that also causes overexpression of cbrB. The cbrAB two-component system has been implicated in sensing and responding to a carbon-nitrogen imbalance. Taken together, these results suggest that the metabolic state of the cell influences expression of the type III regulon.

摘要

III型分泌系统是许多病原体用于将毒素直接输送到靶细胞胞质中的一种专门机制。III型效应蛋白的表达和分泌由细胞接触触发。在铜绿假单胞菌和耶尔森氏菌属中,通过从培养基中去除钙可在体外触发表达。这两种调节模式的潜在机制尚不清楚。在这里,我们对铜绿假单胞菌PAO1的一个转座子插入突变体进行了表征,该突变体在细胞毒性方面表现出明显缺陷。插入位点位于几个参与组氨酸利用的基因上游,并阻碍PAO1以III型依赖方式有效毒害真核细胞的能力。这种抑制取决于培养基中组氨酸的存在,并且似乎取决于组氨酸的过量摄取和分解代谢。细胞毒性缺陷反映在外毒素S(ExoS)表达的降低上。其他参数如生长或菌毛形成不受影响。细胞毒性缺陷部分由cbrA中的插入突变互补,该突变也导致cbrB的过表达。cbrAB双组分系统与感知和响应碳氮失衡有关。综上所述,这些结果表明细胞的代谢状态会影响III型调控子的表达。

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