首页> 外文期刊>Biosensors & Bioelectronics: The International Journal for the Professional Involved with Research, Technology and Applications of Biosensers and Related Devices >Rapid detection and typing of live bacteria from human joint fluid samples by utilizing an integrated microfluidic system
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Rapid detection and typing of live bacteria from human joint fluid samples by utilizing an integrated microfluidic system

机译:利用集成的微流体系统快速检测和分离人类关节液样本中的活细菌

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摘要

Periprosthetic joint infection (PJI) is one of the most dreading complications that hinder the merits of an arthroplasty. A prerequisite for treatment of the above procedure is rapid detection of live bacteria to prevent its recurrence and proper choice of antibiotics. Conventional culture methods are time-consuming and associated with a high false negative rate. Amplification of bacterial genetic materials requires a tedious process but is associated with a high false positive rate. An integrated microfluidic system capable of molecular diagnosis for detecting live bacteria was reported in our previous work. However, the system could not provide detailed information about infectious bacteria for the subsequent antibiotic choices. Furthermore, it took at least 55 min to finish the entire process. In this work, a microfluidic platform using ethidium monoazide (EMA) which can only penetrate into dead bacteria is presented for live bacteria detection and typing within a short period of time (30 min for the detection of live bacteria and another 40 min for the typing of bacteria strains). We tested the proposed system by using human joint fluid samples and found its limit of detection for bacterial detection equal to 10(2) CFU (colony formation unit) for live bacteria detection with gold nanoparticle probes and 10(2) - 10(4) CFU for typing bacteria by an on-chip polymerase chain reaction. The whole procedure of the integrated microfluidic system is automated with little human intervention. Moreover, this is the first time that sequential live bacteria detection and typing are demonstrated on the same microfluidic platform. Based on the promising results, the proposed system may become in the near future an auxiliary tool for immediate medical decision and choice of antibiotics in routine arthroplasties or PJI's. (C) 2014 Elsevier B.V. All rights reserved.
机译:假肢周围关节感染(PJI)是最可怕的并发症之一,阻碍了关节置换术的优点。治疗上述步骤的先决条件是快速检测活细菌以防止其复发和正确选择抗生素。常规的培养方法很费时,并且假阴性率很高。细菌遗传物质的扩增需要繁琐的过程,但会带来很高的假阳性率。我们以前的工作中已经报道了一种能够进行分子诊断以检测活细菌的集成微流控系统。但是,该系统无法为随后的抗生素选择提供有关传染性细菌的详细信息。此外,至少需要55分钟才能完成整个过程。在这项工作中,提出了使用仅能穿透死细菌的单叠氮化乙锭(EMA)的微流体平台,用于在短时间内(30分钟用于检测活细菌,另外40分钟用于键入)进行活细菌检测和分型。细菌菌株)。我们通过使用人类关节液样本测试了该提议的系统,发现其细菌检测的检出限等于金纳米粒子探针和10(2)-10(4)的活细菌检测的10(2)CFU(菌落形成单位) CFU用于通过芯片上聚合酶链式反应对细菌进行分型。集成的微流控系统的整个过程是自动化的,几乎不需要人工干预。此外,这是首次在同一微流控平台上演示了顺序活细菌检测和分型。基于令人鼓舞的结果,拟议的系统可能会在不久的将来成为辅助工具,以便在常规关节置换术或PJI中立即做出医疗决策并选择抗生素。 (C)2014 Elsevier B.V.保留所有权利。

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