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Review: Microbial Analysis in Dielectrophoretic Microfluidic Systems

机译:综述:介电泳微流体系统中的微生物分析

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摘要

Infections caused by various known and emerging pathogenic microorganisms, including antibiotic-resistant strains, are a major threat to global health and well-being. This highlights the urgent need for detection systems for microbial identification, quantification and characterization towards assessing infections, prescribing therapies and understanding the dynamic cellular modifications. Current state-of-the-art microbial detection systems exhibit a trade-off between sensitivity and assay time, which could be alleviated by selective and label-free microbial capture onto the sensor surface from dilute samples. AC electrokinetic methods, such as dielectrophoresis, enable frequency-selective capture of viable microbial cells and spores due to polarization based on their distinguishing size, shape and sub-cellular compositional characteristics, for downstream coupling to various detection modalities. Following elucidation of the polarization mechanisms that distinguish bacterial cells from each other, as well as from mammalian cells, this review compares the microfluidic platforms for dielectrophoretic manipulation of microbials and their coupling to various detection modalities, including immuno-capture, impedance measurement, Raman spectroscopy and nucleic acid amplification methods, as well as for phenotypic assessment of microbial viability and antibiotic susceptibility. Based on the urgent need within point-of-care diagnostics towards reducing assay times and enhancing capture of the target organism, as well as the emerging interest in isolating intact microbials based on their phenotype and subcellular features, we envision widespread adoption of these label-free and selective electrokinetic techniques.
机译:由各种已知的和新兴的病原微生物(包括抗药性菌株)引起的感染是对全球健康和福祉的重大威胁。这突出显示了迫切需要用于鉴定,定量和表征微生物的检测系统,以评估感染,开处方治疗和了解动态细胞修饰。当前最先进的微生物检测系统在灵敏度和检测时间之间取得了平衡,可以通过从稀薄样品中选择性和无标记的微生物捕获到传感器表面来缓解。交流电动力学方法(例如介电电泳)可根据其区分的大小,形状和亚细胞组成特征,通过极化对活的微生物细胞和孢子进行频率选择性捕获,以实现下游与各种检测方式的偶联。在阐明了区分细菌细胞和哺乳动物细胞的极化机制后,本文对微生物的双电泳操作及其与各种检测方式的耦合进行了比较,这些平台包括免疫捕获,阻抗测量,拉曼光谱核酸扩增方法,以及微生物生存力和抗生素敏感性的表型评估。基于即时诊断的迫切需要,以减少测定时间并增强对目标生物的捕获,以及对基于完整微生物的表型和亚细胞特征分离完整微生物的兴趣日益浓厚,我们设想这些标签可广泛采用自由和选择性的电动技术。

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