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Analytical strategies for improving the robustness and reproducibility of bioluminescent microbial bioreporters

机译:改善生物发光微生物生物报告基因的耐用性和可重复性的分析策略

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Whole-cell bioluminescent (BL) bioreporter technology is a useful analytical tool for developing biosensors for environmental toxicology and preclinical studies. However, when applied to real samples, several methodological problems prevent it from being widely used. Here, we propose a methodological approach for improving its analytical performance with complex matrix. We developed bioluminescent Escherichia coli and Saccharomyces cerevisiae bioreporters for copper ion detection. In the same cell, we introduced two firefly luciferases requiring the same luciferin substrate emitting at different wavelengths. The expression of one was copper ion specific. The other, constitutively expressed, was used as a cell viability internal control. Engineered BL cells were characterized using the noninvasive gravitational field-flow fractionation (GrFFF) technique. Homogeneous cell population was isolated. Cells were then immobilized in a polymeric matrix improving cell responsiveness. The bioassay was performed in 384-well black polystyrene microtiter plates directly on the sample. After 2 h of incubation at 37 °C and the addition of the luciferin, we measured the emitted light. These dual-color bioreporters showed more robustness and a wider dynamic range than bioassays based on the same strains with a single reporter gene and that uses a separate cell strain as BL control. The internal correction allowed to accurately evaluate the copper content even in simulated toxic samples, where reduced cell viability was observed. Homogenous cells isolated by GrFFF showed improvement in method reproducibility, particularly for yeast cells. The applicability of these bioreporters to real samples was demonstrated in tap water and wastewater treatment plant effluent samples spiked with copper and other metal ions.
机译:全细胞生物发光(BL)生物报告者技术是开发用于环境毒理学和临床前研究的生物传感器的有用分析工具。但是,当应用于实际样品时,一些方法上的问题阻止了它的广泛使用。在这里,我们提出了一种使用复杂矩阵来提高其分析性能的方法学方法。我们开发了用于铜离子检测的生物发光大肠杆菌和啤酒酵母生物报告物。在同一单元中,我们引入了两种萤火虫荧光素酶,它们需要相同的荧光素底物以不同的波长发射。一种表达是铜离子特异性的。组成型表达的另一个用作细胞生存力内部对照。使用无创重力场流分级分离(GrFFF)技术对工程BL细胞进行了表征。分离出同质细胞群。然后将细胞固定在提高细胞反应性的聚合物基质中。在384孔黑色聚苯乙烯微量滴定板中直接对样品进行生物测定。在37°C下孵育2小时并添加萤光素后,我们测量了发出的光。与基于具有单个报告基因的相同菌株并使用单独的细胞株作为BL对照的生物测定法相比,这些双色生物报告物显示出更高的鲁棒性和更宽的动态范围。通过内部校正,即使在模拟的有毒样品(观察到细胞活力降低)中,也可以准确评估铜含量。通过GrFFF分离的同质细胞在方法重现性方面有所改善,尤其是对于酵母细胞。这些生物报告者对真实样品的适用性在掺有铜和其他金属离子的自来水和废水处理厂废水样品中得到证明。

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