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Microfluidic detection of movements of Escherichia coli for rapid antibiotic susceptibility testing

机译:大肠杆菌运动的微流体检测快速抗生素易感性测试

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摘要

Various nanomechanical movements of bacteria provide a signature of bacterial viability. Most notably, bacterial movements have been observed to subside rapidly and dramatically when the bacteria are exposed to effective antibiotics. Thus, monitoring bacterial movements, if performed with high fidelity, could offer a path to various clinical microbiological applications, including antibiotic susceptibility tests. Here, we introduce a robust and ultrasensitive electrical transduction technique for detecting the nanomechanical movements of bacteria. The technique is based on measuring the electrical fluctuations in a microfluidic channel, which the bacteria populate. The swimming of planktonic bacteria and the random oscillations of surface-immobilized bacteria both cause small but detectable electrical fluctuations. We show that this technique provides enough sensitivity to detect even the slightest movements of a single cell; we also demonstrate an antibiotic susceptibility test in a biological matrix. Given that it lends itself to smooth integration with other microfluidic methods and devices, the technique can be developed into a functional antibiotic susceptibility test, in particular, for urinary tract infections.
机译:细菌的各种纳米力学运动提供细菌活力的签名。最值得注意的是,当细菌暴露于有效抗生素时,已经观察到细菌运动迅速,显着地缓解。因此,监测细菌运动,如果高保真,可以提供各种临床微生物应用的途径,包括抗生素易感性测试。在这里,我们介绍一种鲁棒和超细电转换技术,用于检测细菌的纳米机械运动。该技术基于测量细菌填充的微流体通道中的电波动。浮游细菌的游泳和表面固定细菌的随机振荡均导致小但可检测的电波动。我们表明该技术提供足够的敏感性来检测单个细胞的最轻微的运动;我们还证明了生物基质中的抗生素敏感性试验。鉴于它借给利用其他微流体方法和器件的平滑集成,可以将该技术开发成功能性抗生素敏感性试验,特别是用于尿路感染。

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