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Multi-Channel Microfluidic Biosensor Platform Applied for Online Monitoring and Screening of Biofilm Formation and Activity

机译:多通道微流控生物传感器平台用于在线监测和筛选生物膜形成和活性

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摘要

Bacterial colonization of surfaces and interfaces has a major impact on various areas including biotechnology, medicine, food industries, and water technologies. In most of these areas biofilm development has a strong impact on hygiene situations, product quality, and process efficacies. In consequence, biofilm manipulation and prevention is a fundamental issue to avoid adverse impacts. For such scenario online, non-destructive biofilm monitoring systems become important in many technical and industrial applications. This study reports such a system in form of a microfluidic sensor platform based on the combination of electrical impedance spectroscopy and amperometric current measurement, which allows sensitive online measurement of biofilm formation and activity. A total number of 12 parallel fluidic channels enable real-time online screening of various biofilms formed by different Pseudomonas aeruginosa and Stenotrophomonas maltophilia strains and complex mixed population biofilms. Experiments using disinfectant and antibiofilm reagents demonstrate that the biofilm sensor is able to discriminate between inactivation/killing of bacteria and destabilization of biofilm structures. The impedance and amperometric sensor data demonstrated the high dynamics of biofilms as a consequence of distinct responses to chemical treatment strategies. Gene expression of flagellar and fimbrial genes of biofilms grown inside the microfluidic system supported the detected biofilm growth kinetics. Thus, the presented biosensor platform is a qualified tool for assessing biofilm formation in specific environments and for evaluating the effectiveness of antibiofilm treatment strategies.
机译:表面和界面的细菌定殖对包括生物技术,医药,食品工业和水技术在内的各个领域都具有重大影响。在大多数这些领域中,生物膜的发展对卫生状况,产品质量和工艺效率都有很大影响。因此,生物膜的处理和预防是避免不利影响的基本问题。对于这种在线情况,无损生物膜监测系统在许多技术和工业应用中都变得很重要。这项研究以微流控传感器平台的形式报告了这样一个系统,该系统基于电阻抗光谱法和安培电流测量法的结合,可以对生物膜的形成和活性进行敏感的在线测量。总共12条平行的流体通道可以实时在线筛选由不同的铜绿假单胞菌和嗜麦芽单胞菌的嗜麦芽孢杆菌菌株和复杂的混合种群生物膜形成的各种生物膜。使用消毒剂和抗生物膜试剂的实验表明,生物膜传感器能够区分细菌的灭活/杀灭和生物膜结构的不稳定。阻抗和安培传感器数据表明,由于对化学处理策略的不同响应,生物膜具有很高的动态性。微流系统内部生长的生物膜鞭毛和纤维基因的基因表达支持检测到的生物膜生长动力学。因此,提出的生物传感器平台是用于评估特定环境中生物膜形成和评估抗生物膜治疗策略有效性的合格工具。

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