Template bacteria-free fabrication of surface imprinted polymer-based biosensor for E. coli detection using photolithographic mimics: Hacking bacterial adhesion

IF 10.7 1区 生物学 Q1 BIOPHYSICS Biosensors and Bioelectronics Pub Date : 2024-06-13 DOI:10.1016/j.bios.2024.116491
Dua Özsoylu , Fereshteh Aliazizi , Patrick Wagner , Michael J. Schöning
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Abstract

As one class of molecular imprinted polymers (MIPs), surface imprinted polymer (SIP)-based biosensors show great potential in direct whole-bacteria detection. Micro-contact imprinting, that involves stamping the template bacteria immobilized on a substrate into a pre-polymerized polymer matrix, is the most straightforward and prominent method to obtain SIP-based biosensors. However, the major drawbacks of the method arise from the requirement for fresh template bacteria and often non-reproducible bacteria distribution on the stamp substrate. Herein, we developed a positive master stamp containing photolithographic mimics of the template bacteria (E. coli) enabling reproducible fabrication of biomimetic SIP-based biosensors without the need for the “real” bacteria cells. By using atomic force and scanning electron microscopy imaging techniques, respectively, the E. coli-capturing ability of the SIP samples was tested, and compared with non-imprinted polymer (NIP)-based samples and control SIP samples, in which the cavity geometry does not match with E. coli cells. It was revealed that the presence of the biomimetic E. coli imprints with a specifically designed geometry increases the sensor E. coli-capturing ability by an “imprinting factor” of about 3. These findings show the importance of geometry-guided physical recognition in bacterial detection using SIP-based biosensors. In addition, this imprinting strategy was employed to interdigitated electrodes and QCM (quartz crystal microbalance) chips. E. coli detection performance of the sensors was demonstrated with electrochemical impedance spectroscopy (EIS) and QCM measurements with dissipation monitoring technique (QCM-D).

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利用光刻模拟技术制造用于检测大肠杆菌的无模板细菌表面印迹聚合物生物传感器:破解细菌粘附问题
作为分子印迹聚合物(MIP)的一种,基于表面印迹聚合物(SIP)的生物传感器在直接检测整个细菌方面显示出巨大的潜力。微接触压印法是将固定在基底上的模板细菌压印到预聚合的聚合物基质中,是获得基于 SIP 的生物传感器最直接、最有效的方法。然而,该方法的主要缺点是需要新鲜的模板细菌,而且细菌在印章基底上的分布往往不可重现。在此,我们开发了一种含有光刻模拟模板细菌(大肠杆菌)的正母印章,无需 "真实 "细菌细胞,即可重复制造生物仿生 SIP 生物传感器。通过分别使用原子力和扫描电子显微镜成像技术,测试了 SIP 样品的大肠杆菌捕获能力,并与基于非压印聚合物(NIP)的样品和对照 SIP 样品进行了比较,后者的空腔几何形状与大肠杆菌细胞不匹配。这些发现表明,在使用基于 SIP 的生物传感器进行细菌检测时,几何形状引导的物理识别非常重要。此外,这种压印策略还被应用到了交错电极和 QCM(石英晶体微天平)芯片上。传感器的大肠杆菌检测性能通过电化学阻抗光谱(EIS)和采用耗散监测技术的 QCM 测量(QCM-D)得到了验证。
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来源期刊
Biosensors and Bioelectronics
Biosensors and Bioelectronics 工程技术-电化学
CiteScore
20.80
自引率
7.10%
发文量
1006
审稿时长
29 days
期刊介绍: Biosensors & Bioelectronics, along with its open access companion journal Biosensors & Bioelectronics: X, is the leading international publication in the field of biosensors and bioelectronics. It covers research, design, development, and application of biosensors, which are analytical devices incorporating biological materials with physicochemical transducers. These devices, including sensors, DNA chips, electronic noses, and lab-on-a-chip, produce digital signals proportional to specific analytes. Examples include immunosensors and enzyme-based biosensors, applied in various fields such as medicine, environmental monitoring, and food industry. The journal also focuses on molecular and supramolecular structures for enhancing device performance.
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