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用于使用培养皿监测细菌生物膜生长的基于无标记叉指式微电极的生物传感器。

Label-free interdigitated microelectrode based biosensors for bacterial biofilm growth monitoring using Petri dishes.

作者信息

Paredes Jacobo, Becerro Sheila, Arana Sergio

机构信息

CEIT and Tecnun (University of Navarra), Paseo de Manuel Lardizábal, n° 15, 20018 Donostia-San Sebastián, Spain; CIC microGUNE, Goiru Kalea 9, 20500 Arrasate-Mondragon, Spain.

CEIT and Tecnun (University of Navarra), Paseo de Manuel Lardizábal, n° 15, 20018 Donostia-San Sebastián, Spain; CIC microGUNE, Goiru Kalea 9, 20500 Arrasate-Mondragon, Spain.

出版信息

J Microbiol Methods. 2014 May;100:77-83. doi: 10.1016/j.mimet.2014.02.022. Epub 2014 Mar 12.

Abstract

Impedance microbiology (IM) is a known technique that has been applied during the last decades to detect the presence of microorganisms in real samples in different fields: food industry, healthcare, environment, etc. Bacterial biofilms however have not been so far studied despite the fact that they are the most common microbiological formation and that they present resistance to antimicrobial agents. In situ early detection of bacterial biofilm is still a challenge nowadays that causes huge impact in many different scenarios. The ability to detect biofilm generation early will allow better and more efficient treatments preventing high costs and important problems. In this work a new performance of this technique with interdigitated microelectrode sensors (IDE) is proposed. A specific culturing setup where the sensors have been integrated in Petri Dishes has been developed. From the results it can be highlighted that low frequencies are more sensitive for detection than higher ones. The results achieved record variations of approximately 40% in the equivalent serial resistance after 10h of culture. Electrical models have been successfully simulated to find the electrical behavior of the development of biofilms. Variations in both the capacitance and resistance were recorded during the growth of the microbes.

摘要

阻抗微生物学(IM)是一项广为人知的技术,在过去几十年中已被应用于不同领域的实际样品中微生物的检测,如食品工业、医疗保健、环境等。然而,尽管细菌生物膜是最常见的微生物聚集体,并且对抗菌剂具有抗性,但迄今为止尚未对其进行研究。细菌生物膜的原位早期检测如今仍是一项挑战,这在许多不同情况下都会产生巨大影响。早期检测生物膜形成的能力将有助于实现更好、更有效的治疗,避免高昂成本和重大问题。在这项工作中,提出了一种使用叉指微电极传感器(IDE)的该技术的新性能。开发了一种将传感器集成在培养皿中的特定培养装置。从结果可以突出看出,低频比高频对检测更敏感。培养10小时后,等效串联电阻的变化达到了约40%的创纪录水平。已成功模拟电气模型以发现生物膜生长过程中的电学行为。在微生物生长过程中记录了电容和电阻的变化。

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