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Quantitative Visualization of Gene Expression in Mucoid and Nonmucoid Pseudomonas aeruginosa Aggregates Reveals Localized Peak Expression of Alginate in the Hypoxic Zone

机译:定量可视化的黏液和非黏液铜绿假单胞菌聚集体中的基因表达揭示了低氧区藻酸盐的局部峰值表达。

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It is well appreciated that oxygen- and other nutrient-limiting gradients characterize microenvironments within chronic infections that foster bacterial tolerance to treatment and the immune response. However, determining how bacteria respond to these microenvironments has been limited by a lack of tools to study bacterial functions at the relevant spatial scales in situ . Here, we report the application of the hybridization chain reaction (HCR) v3.0 to provide analog mRNA relative quantitation of Pseudomonas aeruginosa single cells as a step toward this end. To assess the potential for this method to be applied to bacterial populations, we visualized the expression of genes needed for the production of alginate ( algD ) and the dissimilatory nitrate reductase ( narG ) at single-cell resolution within laboratory-grown aggregates. After validating new HCR probes, we quantified algD and narG expression across microenvironmental gradients within both single aggregates and aggregate populations using the agar block biofilm assay (ABBA). For mucoid and nonmucoid ABBA populations, narG was expressed in hypoxic and anoxic regions, while alginate expression was restricted to the hypoxic zone (~40 to 200?μM O_(2)). Within individual aggregates, surface-adjacent cells expressed alginate genes at higher levels than interior cells, revealing that alginate expression is not constitutive in mucoid P. aeruginosa but instead varies with oxygen availability. These results establish HCR v3.0 as a versatile and robust tool to resolve subtle differences in gene expression at spatial scales relevant to microbial assemblages. This advance has the potential to enable quantitative studies of microbial gene expression in diverse contexts, including pathogen activities during infections.
机译:众所周知,氧气和其他营养限制梯度是慢性感染内微环境的特征,这种环境促进细菌对治疗和免疫反应的耐受性。然而,由于缺乏在相关空间尺度上研究细菌功能的工具,限制了细菌对这些微环境的反应方式的确定。在这里,我们报告了杂交链反应(HCR)v3.0的应用,以提供铜绿假单胞菌单细胞的模拟mRNA相对定量,作为朝着这一目标迈出的一步。为了评估该方法应用于细菌群体的潜力,我们在实验室生长的聚集体中以单细胞分辨率观察了藻酸盐(algD)和异化硝酸还原酶(narG)产生所需基因的表达。在验证了新的HCR探针后,我们使用琼脂块生物膜测定法(ABBA)对单个聚集体和聚集体群体中微环境梯度内的algD和narG表达进行了定量。对于粘液性和非粘液性ABBA种群,narG在缺氧和缺氧区域表达,而藻酸盐表达仅限于缺氧区域(约40至200?M O_(2))。在单个聚集体中,表面邻近细胞表达藻酸盐基因的水平高于内部细胞,这表明藻酸盐表达在粘液铜绿假单胞菌中不是组成性的,而是随氧气的利用而变化。这些结果使HCR v3.0成为解决与微生物组合相关的空间尺度上基因表达细微差异的通用且强大的工具。这项进展具有潜力,使得能够在各种情况下对微生物基因表达进行定量研究,包括感染期间的病原体活动。

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