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Dielectrophoretic microfluidic device for the continuous sorting of Escherichia coli from blood cells

机译:用于从血细胞连续分选大肠杆菌的介电泳微流体装置

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摘要

Microfluidic diagnostic devices promise faster disease identification by purifying and concentrating low-abundance analytes from a flowing sample. The diagnosis of sepsis, a whole body inflammatory response often caused by microbial infections of the blood, is a model system for pursuing the advantages of microfluidic devices over traditional diagnostic protocols. Traditional sepsis diagnoses require large blood samples and several days to culture and identify the low concentration microbial agent. During these long delays while culturing, the physician has little or no actionable information to treat this acute illness. We designed a microfluidic chip using dielectrophoresis to sort and concentrate the target microbe from a flowing blood sample. This design was optimized using the applicable electrokinetic and hydrodynamic theories. We quantify the sorting efficiency of this device using growth-based assays which show 30% of injected microbes are recovered viable, consistent with the electroporation of target cells by the dielectrophoretic cell sorters. Finally, the results illustrate the device is capable of a five-fold larger microbe concentration in the target analyte stream compared to the waste stream at a continuous sample flow rate of 35 μl∕h.
机译:微流诊断设备可通过纯化和浓缩流动样品中的低丰度分析物来实现更快的疾病鉴定。脓毒症的诊断,一种通常由血液的微生物感染引起的全身炎症反应,是一种模型系统,用于追求微流控装置相对于传统诊断方案的优势。传统的败血症诊断需要大量的血液样本和数天的时间来培养和鉴定低浓度的微生物制剂。在长时间的培养过程中,医生几乎没有或没有可行的信息来治疗这种急性疾病。我们设计了一种使用介电电泳的微流控芯片,以对流动的血液样本中的目标微生物进行分类和浓缩。使用适用的电动和流体动力学理论对该设计进行了优化。我们使用基于生长的测定法量化了该设备的分选效率,该方法表明回收的30%注入的微生物是可行的,这与介电泳细胞分选仪对靶细胞的电穿孔一致。最后,结果说明该设备在连续样品流速为35μlh时,目标分析物流中的微生物浓度是废物流中微生物浓度的五倍。

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