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首页> 外文期刊>Chemosensors >Inkjet Printed Interdigitated Biosensor for Easy and Rapid Detection of Bacteriophage Contamination: A Preliminary Study for Milk Processing Control Applications
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Inkjet Printed Interdigitated Biosensor for Easy and Rapid Detection of Bacteriophage Contamination: A Preliminary Study for Milk Processing Control Applications

机译:喷墨印刷交叉指型生物传感器,可轻松,快速地检测噬菌体污染:牛奶加工控制应用的初步研究

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Bacteriophages are responsible for significant material and time losses in the dairy industry. This because these viruses infect the selected lactic starter cultures used for milk fermentation, i.e., the first stage toward cheese production. Standard detection techniques are time- and labor-consuming, causing huge costs related to production plant sanitation and product wasting. A new type of biosensor for early detection of bacteriophage contamination is highly demanded by the milk processing market, and inkjet-printed electrochemical sensors could be the answer. Inkjet printing is a well-known technology that has been revisited in recent years, using silver nanoparticle (AgNP) based inks for low-cost and easy fabrication of sensing and biosensing systems on flexible and eco-compatible substrates. In this research, we studied inkjet printing for the manufacturing of both interdigitated electrodes arrays (IDEAs), and a versatile system to monitor bacterial cultures by electrochemical impedance spectroscopy (EIS). In particular, we studied this biosensing system for the detection of bacteriophages by comparing its performance with standard microbiological methods. We performed electrical and morphological characterizations of the devices produced with a consumer-use inkjet printer with commercial AgNPs ink on flexible substrates, such as office paper, polyethylene (PET), and photo paper. We used light microscopy optical analysis, profilometry, atomic force microscopy (AFM), and scanning electron microscopy (SEM) imaging to define the objects resolution, their real dimensions, and thickness. We also investigated the devices’ conductivity and layout, by EIS measurements with a standard buffer solution, i.e., phosphate buffered saline (PBS). Finally, we tested our system by monitoring Lactococcus lactis cultures and bacteriophage infection. We compared the results to those obtained by two standard microbiological methods in terms of response time, proving that our technique requires less than half the time of other methods and no specialized personnel.
机译:噬菌体是造成乳制品行业大量材料和时间损失的原因。这是因为这些病毒感染了用于牛奶发酵的选定的乳酸发酵剂培养物,即,奶酪生产的第一步。标准的检测技术既费时又费力,从而导致与生产工厂卫生和产品浪费相关的巨额成本。牛奶加工市场对用于早期检测噬菌体污染的新型生物传感器提出了很高的要求,而喷墨印刷电化学传感器可能是解决之道。喷墨打印是近年来被重新审视的一项著名技术,它使用基于银纳米颗粒(AgNP)的墨水在柔性且生态兼容的基材上低成本,简便地制造传感和生物传感系统。在这项研究中,我们研究了喷墨印刷以制造两个叉指式电极阵列(IDEA),以及一种通过电化学阻抗谱(EIS)监测细菌培养的多功能系统。特别是,我们通过将其性能与标准微生物学方法进行了比较,研究了这种用于检测噬菌体的生物传感系统。我们对用消费型喷墨打印机生产的设备进行了电学和形态学表征,这些设备在商用纸,聚乙烯(PET)和照片纸等柔性基材上使用了商用AgNPs墨水。我们使用光学显微镜光学分析,轮廓测定,原子力显微镜(AFM)和扫描电子显微镜(SEM)成像来定义对象的分辨率,其实际尺寸和厚度。我们还通过使用标准缓冲溶液(即磷酸盐缓冲盐水(PBS))进行EIS测量,研究了设备的电导率和布局。最后,我们通过监测乳酸乳球菌培养物和噬菌体感染来测试我们的系统。我们将结果与通过两种标准微生物学方法获得的响应时间进行了比较,证明了我们的技术所需的时间少于其他方法的一半,而且不需要专业人员。

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