Carbon screen-printed electrodes on ceramic substrates for label-free molecular detection of antibiotic resistance

Eleojo A. Obaje, Gerard Cummins, Holger Schulze, Salman Mahmood, Marc P.Y. Desmulliez, Till T. Bachmann
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引用次数: 23

Abstract

The growing threat posed by antimicrobial resistance on the healthcare and economic well-being of mankind is pushing the need to develop novel and improved diagnostic platforms for its rapid detection at point of care, facilitating better patient management strategies during antibiotic therapy. In this paper, we present the manufacturing and characterisation of a low-cost carbon screen-printed electrochemical sensor on a ceramic substrate. Using label-free electrochemical impedance spectroscopy, the sensor is demonstrated for the detection of blaNDM, which is one of the main antimicrobial resistance factors in carbapenem-resistant Enterobacteriaceae. The electrochemical performance of the newly fabricated sensor was initially investigated in relation to the function of its underlying composite materials, evaluating the choice of carbon and dielectric pastes by characterising properties like surface roughness, wetting and susceptibility of unspecific DNA binding. Subsequently, the sensor was used in an electrochemical impedance spectroscopy assay for the sensitive and specific detection of synthetic blaNDM targets achieving a detection limit of 200 nM. The sensor properties and performance demonstrated in this study proved the suitability of the new electrode materials and manufacturing for further point-of-care test development as an inexpensive and effective alternative to gold electrodes sensor.

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陶瓷基板上碳丝网印刷电极的无标签抗生素耐药性分子检测
抗菌素耐药性对人类医疗保健和经济福祉构成的威胁日益严重,这促使人们需要开发新的和改进的诊断平台,以便在护理点快速检测,促进在抗生素治疗期间更好的患者管理策略。在本文中,我们提出了一个低成本的碳丝网印刷电化学传感器在陶瓷基板上的制造和表征。利用无标签电化学阻抗谱技术,证明了该传感器可检测blaNDM, blaNDM是碳青霉烯耐药肠杆菌科的主要耐药因子之一。新制造的传感器的电化学性能最初与其底层复合材料的功能有关,通过表征表面粗糙度、润湿性和非特异性DNA结合的敏感性等特性来评估碳和介电浆料的选择。随后,该传感器用于电化学阻抗谱分析,对合成blaNDM目标进行灵敏和特异性检测,检测限为200 nM。本研究中所展示的传感器特性和性能证明了新电极材料和制造的适用性,可以作为金电极传感器的廉价而有效的替代品进行进一步的护理点测试开发。
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