首页> 外文期刊>JALA: Journal of the Association for Laboratory Automation >Rapid, Electrical Impedance Detection of Bacterial Pathogens Using Immobilized Antimicrobial Peptides
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Rapid, Electrical Impedance Detection of Bacterial Pathogens Using Immobilized Antimicrobial Peptides

机译:使用固定的抗菌肽快速,电阻抗检测细菌病原体

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摘要

The detection of bacterial pathogens plays an important role in many biomedical applications, including clinical diagnostics, food and water safety, and biosecurity. Most current bacterial detection technologies, however, are unsuitable for use in resource-limited settings where the highest disease burdens often exist. Thus, there is an urgent need to develop portable, user-friendly biosensors capable of rapid detection of multiple pathogens in situ. We report a microfluidic chip for multiplexed detection of bacterial cells that uses antimicrobial peptides (AMPs) with species-specific targeting and binding capabilities. The AMPs are immobilized onto an electrical impedance microsensor array and serve as biorecognition elements for bacterial cell detection. Characterization of peptide immobilization on the sensors revealed robust surface binding via cysteine-gold interactions and vertical alignment relative to the sensor surface. Samples containing Streptococcus mutans and Pseudomonas aeruginosa were loaded in the chip, and both microorganisms were detected at minimum concentrations of 10(5) cfu/mL within 25 min. Measurements performed in a variety of solutions revealed that high-conductivity solutions produced the largest impedance values. By integrating a highly specific bacterial cell capture scheme with rapid electrical detection, this device demonstrates great potential as a next-generation, point-of-care diagnostic platform for the detection of disease-causing pathogenic agents.
机译:细菌病原体的检测在许多生物医学应用中起着重要作用,包括临床诊断,食品和水的安全性以及生物安全性。但是,当前大多数细菌检测技术都不适合在资源有限的环境中使用,因为在这些环境中疾病负担通常最高。因此,迫切需要开发一种能够快速就地检测多种病原体的便携式,用户友好型生物传感器。我们报告了一种微流控芯片,用于细菌细胞的多重检测,该芯片使用具有物种特异性靶向和结合能力的抗菌肽(AMP)。 AMP被固定在电阻抗微传感器阵列上,并用作细菌细胞检测的生物识别元件。固定在传感器上的肽的表征揭示了通过半胱氨酸-金相互作用和相对于传感器表面的垂直排列的牢固的表面结合。将含有变形链球菌和铜绿假单胞菌的样品装入芯片中,并在25分钟内检测到最低浓度为10(5)cfu / mL的两种微生物。在各种溶液中进行的测量表明,高电导率溶液产生最大的阻抗值。通过将高度特异性的细菌细胞捕获方案与快速电检测相结合,该设备具有巨大的潜力,可作为下一代病床诊断平台来检测引起疾病的病原体。

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