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幽门螺杆菌对铁饥饿的生长阶段依赖性反应。

Growth phase-dependent response of Helicobacter pylori to iron starvation.

作者信息

Merrell D Scott, Thompson Lucinda J, Kim Charles C, Mitchell Hazel, Tompkins Lucy S, Lee Adrian, Falkow Stanley

机构信息

Department of Microbiology and Immunology, Stanford University School of Medicine, Stanford, California 94305, USA.

出版信息

Infect Immun. 2003 Nov;71(11):6510-25. doi: 10.1128/IAI.71.11.6510-6525.2003.

Abstract

Iron is an essential nutrient that is often found in extremely limited available quantities within eukaryotic hosts. Because of this, many pathogenic bacteria have developed regulated networks of genes important for iron uptake and storage. In addition, it has been shown that many bacteria use available iron concentrations as a signal to regulate virulence gene expression. We have utilized DNA microarray technology to identify genes of the human pathogen Helicobacter pylori that are differentially regulated on a growth-inhibiting shift to iron starvation conditions. In addition, the growth phase-dependent expression of these genes was investigated by examining both exponential and stationary growth phase cultures. We identified known iron-regulated genes, as well as a number of genes whose regulation by iron concentration was not previously appreciated. Included in the list of regulated factors were the known virulence genes cagA, vacA, and napA. We examined the effect of iron starvation on the motility of H. pylori and found that exponential- and stationary-phase cultures responded differently to the stress. We further found that while growing cells are rapidly killed by iron starvation, stationary-phase cells show a remarkable ability to survive iron depletion. Finally, bioinformatic analysis of the predicted promoter regions of the differentially regulated genes led to identification of several putative Fur boxes, suggesting a direct role for Fur in iron-dependent regulation of these genes.

摘要

铁是一种必需营养素,在真核宿主中其可利用量往往极其有限。因此,许多致病细菌已形成了对铁摄取和储存至关重要的基因调控网络。此外,已有研究表明,许多细菌利用可利用铁浓度作为信号来调控毒力基因表达。我们利用DNA微阵列技术来鉴定人类病原体幽门螺杆菌中在向铁饥饿条件转变导致生长抑制时差异调控的基因。此外,通过检测指数生长期和稳定生长期培养物来研究这些基因的生长阶段依赖性表达。我们鉴定出了已知的铁调控基因,以及一些其受铁浓度调控情况此前未被认识到的基因。受调控因子列表中包括已知的毒力基因cagA、vacA和napA。我们研究了铁饥饿对幽门螺杆菌运动性的影响,发现指数生长期和稳定生长期培养物对这种应激的反应不同。我们进一步发现,虽然生长中的细胞会因铁饥饿而迅速死亡,但稳定期细胞在铁耗尽时表现出显著的存活能力。最后,对差异调控基因预测启动子区域的生物信息学分析导致鉴定出了几个假定的Fur框,表明Fur在这些基因的铁依赖性调控中起直接作用。

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