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FliZ Is a Global Regulatory Protein Affecting the Expression of Flagellar and Virulence Genes in Individual Xenorhabdus nematophila Bacterial Cells

机译:Fliz是一种全球性调节蛋白,影响个体中鞭毛和毒力基因的表达<斜视> Xenorhabdus nematophila 细菌细胞

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Heterogeneity in the expression of various bacterial genes has been shown to result in the presence of individuals with different phenotypes within clonal bacterial populations. The genes specifying motility and flagellar functions are coordinately regulated and form a complex regulon, the flagellar regulon. Complex interplay has recently been demonstrated in the regulation of flagellar and virulence gene expression in many bacterial pathogens. We show here that FliZ, a DNA-binding protein, plays a key role in the insect pathogen, Xenorhabdus nematophila , affecting not only hemolysin production and virulence in insects, but efficient swimming motility. RNA-Seq analysis identified FliZ as a global regulatory protein controlling the expression of 278 Xenorhabdus genes either directly or indirectly. FliZ is required for the efficient expression of all flagellar genes, probably through its positive feedback loop, which controls expression of the flhDC operon, the master regulator of the flagellar circuit. FliZ also up- or downregulates the expression of numerous genes encoding non-flagellar proteins potentially involved in key steps of the Xenorhabdus lifecycle. Single-cell analysis revealed the bimodal expression of six identified markers of the FliZ regulon during exponential growth of the bacterial population. In addition, a combination of fluorescence-activated cell sorting and RT-qPCR quantification showed that this bimodality generated a mixed population of cells either expressing (“ON state”) or not expressing (“OFF state”) FliZ-dependent genes. Moreover, studies of a bacterial population exposed to a graded series of FliZ concentrations showed that FliZ functioned as a rheostat, controlling the rate of transition between the “OFF” and “ON” states in individuals. FliZ thus plays a key role in cell fate decisions, by transiently creating individuals with different potentials for motility and host interactions. Author Summary Heterogeneity in the expression of bacterial genes may result in the presence of cells with different phenotypes in an isogenic population. The existence of such “non-genetic individuality” was the first described many years ago for the flagellum-driven swimming behavior of bacteria. In this study, we identified a new bimodal switch controlling the expression of genes involved in flagellum biosynthesis and host interactions in the insect pathogen Xenorhabdus nematophila . This switch is modulated by a transcriptional regulator called FliZ. In addition to identifying all the specific genes up- and downregulated by FliZ, we showed that the concentration of FliZ fine-tuned the expression of FliZ target genes, resulting in individuals with different potentials for bacterial locomotion, host colonization and virulence.
机译:已经显示各种细菌基因表达中的异质性,导致克隆细菌群体中具有不同表型的个体存在。指定运动性和鞭毛功能的基因是协调的调节和形成旗杆调节件的复杂调和。最近已经证明了在许多细菌病原体中的鞭毛和毒力基因表达的调节中证明了复杂的相互作用。我们在这里展示了DNA结合蛋白,在昆虫病原体,Xenorhabdusnematophila中起关键作用,影响昆虫蛋白的产生和昆虫的毒力,但有效的游泳运动。 RNA-SEQ分析鉴定为弗里斯作为直接或间接地控制278个Xenorhabdus基因的表达的全局调节蛋白。所有鞭毛基因的有效表达需要FLIZ可能是通过其正反馈回路的高效表达,这是控制FLHDC操纵子的表达,鞭毛电路的主稳压器的表达。 Fliz还上调或下调编码潜在涉及Xenorhabdus生命周期的关键步骤的非鞭毛蛋白的许多基因的表达。单细胞分析显示细菌群指数生长期间葡IZ调节件的六种鉴定标记的双峰表达。此外,荧光激活的细胞分选和RT-QPCR定量的组合表明,该双极性产生了表达(“ON状态”)的混合细胞群或不表达(“OFF状态”)氟苯依赖性基因。此外,对暴露于分级系列的氟苯浓度的细菌种群表明,FLIZ作为变性抑制率,控制了个体中“OFF”和“ON”状态之间的过渡速率。因此,弗里茨因此在细胞命运决策中起着关键作用,通过瞬时创造具有不同潜力的动力和宿主交互的个人。作者简要在细菌基因表达中的异质性可能导致在中脑群中具有不同表型的细胞存在。这种“非遗传个性”的存在是多年前第一次描述的细菌的鞭毛驱动的游泳行为。在这项研究中,我们确定了一种控制昆虫病原体Xenorhabdusnematophila中涉及鞭毛生物合成和宿主相互作用的基因表达的新的双峰开关。该开关由称为FLIZ的转录调节器调制。除了鉴定氟锌上调和下调的所有特定基因外,我们表明Fliz的浓度细小调整了氟质毒性基因的表达,导致细菌运动,宿主定植和毒力不同的个体。

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