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基于热波传输分析(TWTA)和表面印迹聚合物的仿生细菌鉴定平台。

Biomimetic Bacterial Identification Platform Based on Thermal Wave Transport Analysis (TWTA) through Surface-Imprinted Polymers.

作者信息

Steen Redeker Erik, Eersels Kasper, Akkermans Onno, Royakkers Jeroen, Dyson Simba, Nurekeyeva Kunya, Ferrando Beniamino, Cornelis Peter, Peeters Marloes, Wagner Patrick, Diliën Hanne, van Grinsven Bart, Cleij Thomas Jan

机构信息

Maastricht Science Programme, Maastricht University , P.O. Box 616, 6200 MD Maastricht, The Netherlands.

Soft-Matter Physics and Biophysics Section, Department of Physics and Astronomy, KU Leuven , Celestijnenlaan 200 D, B-3001 Leuven, Belgium.

出版信息

ACS Infect Dis. 2017 May 12;3(5):388-397. doi: 10.1021/acsinfecdis.7b00037. Epub 2017 Apr 11.

Abstract

This paper introduces a novel bacterial identification assay based on thermal wave analysis through surface-imprinted polymers (SIPs). Aluminum chips are coated with SIPs, serving as synthetic cell receptors that have been combined previously with the heat-transfer method (HTM) for the selective detection of bacteria. In this work, the concept of bacterial identification is extended toward the detection of nine different bacterial species. In addition, a novel sensing approach, thermal wave transport analysis (TWTA), is introduced, which analyzes the propagation of a thermal wave through a functional interface. The results presented here demonstrate that bacterial rebinding to the SIP layer resulted in a measurable phase shift in the propagated wave, which is most pronounced at a frequency of 0.03 Hz. In this way, the sensor is able to selectively distinguish between the different bacterial species used in this study. Furthermore, a dose-response curve was constructed to determine a limit of detection of 1 × 10 CFU mL, indicating that TWTA is advantageous over HTM in terms of sensitivity and response time. Additionally, the limit of selectivity of the sensor was tested in a mixed bacterial solution, containing the target species in the presence of a 99-fold excess of competitor species. Finally, a first application for the sensor in terms of infection diagnosis is presented, revealing that the platform is able to detect bacteria in clinically relevant concentrations as low as 3 × 10 CFU mL in spiked urine samples.

摘要

本文介绍了一种基于表面印迹聚合物(SIPs)热波分析的新型细菌鉴定测定法。铝芯片涂覆有SIPs,作为合成细胞受体,此前已与热传递方法(HTM)结合用于细菌的选择性检测。在这项工作中,细菌鉴定的概念扩展到检测九种不同的细菌物种。此外,还引入了一种新型传感方法,即热波传输分析(TWTA),该方法分析热波通过功能界面的传播。此处呈现的结果表明,细菌与SIP层的重新结合导致传播波中出现可测量的相移,在0.03 Hz频率下最为明显。通过这种方式,该传感器能够选择性地区分本研究中使用的不同细菌物种。此外,构建了剂量响应曲线以确定检测限为1×10 CFU/mL,表明TWTA在灵敏度和响应时间方面优于HTM。此外,在含有目标物种且竞争物种过量99倍的混合细菌溶液中测试了传感器的选择性极限。最后,展示了该传感器在感染诊断方面的首次应用,结果表明该平台能够在加标的尿液样本中检测到低至3×10 CFU/mL的临床相关浓度的细菌。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3d1c/5432958/86665420d7d0/id-2017-000375_0001.jpg

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