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Utilizing a high fundamental frequency quartz crystal resonator as a biosensor in a digital microfluidic platform

机译:在数字微流体平台中利用高基频石英晶体谐振器作为生物传感器

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We demonstrate the operation of a digital microfluidic lab-on-a-chip system utilizing Electro Wetting on Dielectrics (EWOD) as the actuation principle and a High Fundamental Frequency (HFF; 50 MHz) quartz crystal microbalance (QCM) resonator as a mass-sensitive sensor. In a first experiment we have tested the reversible formation of a phosphor-lipid monolayer of phospholipid vesicles out of an aqueous buffer suspension onto a bio-functionalized integrated QCM sensor. A binding of bio-molecules results in an altered mass load of the resonant sensor and a shift of the resonance frequency can be measured. In the second part of the experiment, the formation of a protein multilayer composed of the biomolecule streptavidin and biotinylated immunoglobulin G was monitored. Additionally, the macroscopic contact angle was optically measured in order to verify the bio-specific binding and to test the implications onto the balance of the surface tensions. Using these sample applications, we were able to demonstrate and to verify the feasibility of integrating a mass-sensitive QCM sensor into a digital microfluidic chip.
机译:我们演示了利用电介质上电润湿(EWOD)作为驱动原理以及高基频(HFF; 50 MHz)石英晶体微天平(QCM)谐振器作为质量-数字微流实验室芯片系统的操作。敏感的传感器。在第一个实验中,我们测试了从水性缓冲液悬浮液到生物功能化集成QCM传感器的磷脂囊泡的磷脂单层的可逆形成。生物分子的结合导致共振传感器的质量负载改变,并且可以测量共振频率的偏移。在实验的第二部分中,监测了由生物分子链霉亲和素和生物素化的免疫球蛋白G组成的蛋白质多层的形成。另外,光学地测量宏观接触角,以验证生物特异性结合并测试对表面张力平衡的影响。使用这些示例应用程序,我们能够演示并验证将质量敏感的QCM传感器集成到数字微流控芯片中的可行性。

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