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Sensitive Real-time and Non-Intrusive Detection of Concentration and Growth of Pathogenic Bacteria using Microfluidic-Microwave Ring Resonator Biosensor

机译:使用微流-微波环共振生物传感器灵敏实时非侵入式检测病原细菌的浓度和生长

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摘要

Infection diagnosis and antibiotic susceptibility testing (AST) are time-consuming and often laborious clinical practices. This paper presents a microwave-microfluidic biosensor for rapid, contactless and non-invasive device for testing the concentration and growth of Escherichia Coli (E. Coli) in medium solutions of different pH to increase the efficacy of clinical microbiology practices. The thin layer interface between the microfluidic channel and the microwave resonator significantly enhanced the detection sensitivity. The microfluidic chip, fabricated using standard soft lithography, was injected with bacterial samples and incorporated with a microwave microstrip ring resonator sensor with an operation frequency of 2.5 GHz and initial quality factor of 83 for detecting the concentration and growth of bacteria. The resonator had a coupling gap area on of 1.5 × 1.5 mm2 as of its sensitive region. The presence of different concentrations of bacteria in different pH solutions were detected via screening the changes in resonant amplitude and frequency responses of the microwave system. The sensor device demonstrated near immediate response to changes in the concentration of bacteria and maximum sensitivity of 3.4 MHz compared to a logarithm value of bacteria concentration. The minimum prepared optical transparency of bacteria was tested at an OD600 value of 0.003. The sensor’s resonant frequency and amplitude parameters were utilized to monitor bacteria growth during a 500-minute time frame, which demonstrated a stable response with respect to detecting the bacterial proliferation. A highly linear response was demonstrated for detecting bacteria concentration at various pH values. The growth of bacteria analyzed over the resonator showed an exponential growth curve with respect to time and concurred with the lag-log-stationary-death model of cell growth. This biosensor is one step forward to automate the complex AST workflow of clinical microbiology laboratories for rapid and automated detection of bacteria as well as screening the bacteria proliferation in response to antibiotics.
机译:感染诊断和抗生素敏感性测试(AST)是耗时且通常费力的临床实践。本文提出了一种微波微流体生物传感器,用于快速,非接触式和非侵入性设备,用于测试不同pH值的中等浓度溶液中大肠杆菌的浓度和生长,以提高临床微生物学实践的效率。微流体通道和微波谐振器之间的薄层界面显着提高了检测灵敏度。使用标准软光刻技术制造的微流控芯片被注入细菌样品,并结合了微波微带环形谐振器传感器,其工作频率为2.5 GHz,初始品质因数为83,用于检测细菌的浓度和生长。谐振器在其敏感区域的耦合间隙面积为1.5×1.5 mm 2 。通过筛选微波系统的共振幅度和频率响应的变化,可以检测到在不同pH溶液中存在不同浓度细菌的情况。与细菌浓度的对数值相比,该传感器设备显示出对细菌浓度变化的近乎即时的响应,最大灵敏度为3.4 maximumMHz。在OD600值为0.003的情况下测试了细菌的最低光学透明度。该传感器的共振频率和振幅参数被用来监测细菌在500分钟内的生长情况,这在检测细菌繁殖方面表现出稳定的响应。为了检测各种pH值下的细菌浓度,显示了高度线性的响应。在谐振器上分析的细菌的生长显示出关于时间的指数增长曲线,并与细胞生长的滞后-对数-静止-死亡模型一致。这种生物传感器是使临床微生物实验室复杂的AST工作流程自动化,朝着快速,自动化地检测细菌以及筛选对抗生素有反应的细菌增殖迈出的一步。

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