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A Second Two-Component Regulatory System of Bordetella bronchiseptica Required for Bacterial Resistance to Oxidative Stress Production of Acid Phosphatase and In Vivo Persistence

机译:细菌对氧化应激的抗性酸性磷酸酶的产生和体内持久性所需的第二个支气管败血博德特氏菌的两组分调节系统

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摘要

Random minitransposon mutagenesis was used to identify genes involved in the survival of Bordetella bronchiseptica within eukaryotic cells. One of the mutants which exhibited a reduced ability to survive intracellularly harbored a minitransposon insertion in a locus (ris) which displays a high degree of homology to two-component regulatory systems. This system exhibited less than 25% amino acid sequence homology to the only other two-component regulatory system described in Bordetella spp., the bvg locus. A risA′-′lacZ translational fusion was constructed and integrated into the chromosome of B. bronchiseptica. Determination of β-galactosidase activity under different environmental conditions suggested that ris is regulated independently of bvg and is optimally expressed at 37°C, in the absence of Mg2+, and when bacteria are in the intracellular niche. This novel regulatory locus, present in all Bordetella spp., is required for the expression of acid phosphatase by B. bronchiseptica. Although catalase and superoxide dismutase production were unaffected, the ris mutant was more sensitive to oxidative stress than the wild-type strain. Complementation of bvg-positive and bvg-negative ris mutants with the intact ris operon incorporated as a single copy into the chromosome resulted in the reestablishment of the ability of the bacterium to produce acid phosphatase and to resist oxidative stress. Mouse colonization studies demonstrated that the ris mutant is cleared by the host much earlier than the wild-type strain, suggesting that ris-regulated products play a significant role in natural infections. The identification of a second two-component system in B. bronchiseptica highlights the complexity of the regulatory network needed for organisms with a life cycle requiring adaptation to both the external environment and a mammalian host.
机译:随机小转座子诱变用于鉴定真核细胞内支气管败血波氏杆菌存活的基因。表现出降低的细胞内存活能力的突变体之一在基因座(ris)中具有微型转座子插入,该基因座与两组分调节系统显示高度同源性。该系统与bvg基因座的博德特氏菌属中描述的唯一的其他两组分调节系统相比,显示出少于25%的氨基酸序列同源性。构建了risA'-'lacZ翻译融合体,并将其整合到支气管败血杆菌中。在不同环境条件下测定β-半乳糖苷酶的活性表明,在没有Mg 2 + 且细菌位于细胞内壁iche中时,ris不受bvg的调控,并在37°C时最佳表达。 。存在于所有博德特氏菌属中的这种新型调节基因座是支气管败血性博德特氏菌表达酸性磷酸酶所必需的。尽管过氧化氢酶和超氧化物歧化酶的产生不受影响,但ris突变体比野生型菌株对氧化应激更敏感。 bvg阳性和bvg阴性ris突变体与完整的ris操纵子作为单个拷贝并入染色体的互补,导致细菌产生酸性磷酸酶和抵抗氧化应激的能力的重建。小鼠定殖研究表明,ris突变体比野生型菌株更早地被宿主清除,这表明 ris 调控的产物在自然感染中起重要作用。在 B中的第二个双组分系统的标识。支气管败血病强调了生命周期要求同时适应外部环境和哺乳动物宿主的生物体所需的监管网络的复杂性。

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