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Active Microcantilever Device for Biological Agent Detection

机译:主动微悬臂梁用于生物制剂检测

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The measurement of binding forces between specific antigen-antibody pairs presents a powerful tool for sensitive detection with applications in medical diagnostics, bioagent sensing, and environmental monitoring. The ability to detect single molecular binding events with an AFM, using the technique of dynamic force spectroscopy, is a known capability; however, reliance on traditional AFM architectures limits the use of this method to laboratory environments. The approach presented here uses active piezoelectric microcantilevers, providing electronic output for detection of molecular binding. Functionalization of this device with specific antibodies provides a platform for a stand-alone detection device. As the microcantilever can be operated as both a sensor and an actuator, the detection scheme includes actuating the cantilever to present an antibody bound to the cantilever tip to a second antibody bound to a fixed substrate. If a target antigen is present in solution, the cantilever detects the mechanical strain and vibrational response created by the binding force and subsequent rupture of the antigen-antibody pair. This detection strategy distinguishes this work from resonance-based cantilever devices that respond to changes in cantilever mass based on adsorption of numerous antigen molecules. In this research, piezoelectric microcantilevers were fabricated, and initial results were obtained demonstrating transient response caused by rupture of nonspecific adhesion forces in air and water environments. Analytical results are also presented relating geometrical parameters with sensor performance.
机译:特定抗原-抗体对之间结合力的测量提供了一种强大的工具,可用于医学诊断,生物试剂传感和环境监测中的灵敏检测。使用动态力谱技术利用原子力显微镜检测单分子结合事件的能力是一项已知功能;但是,对传统AFM体系结构的依赖将这种方法的使用限制在实验室环境中。这里介绍的方法使用有源压电微悬臂梁,提供电子输出来检测分子结合。使用特定抗体对该设备进行功能化可为独立检测设备提供平台。由于微悬臂梁既可以用作传感器也可以用作致动器,因此检测方案包括启动悬臂梁,以将结合到悬臂梁末端的抗体呈现给结合到固定底物的第二抗体。如果溶液中存在目标抗原,则悬臂将检测由抗原-抗体对的结合力和随后的断裂而产生的机械应变和振动响应。这种检测策略将这项工作与基于共振的悬臂装置区分开,该装置基于众多抗原分子的吸附对悬臂质量的变化做出响应。在这项研究中,制造了压电微悬臂梁,并获得了初步结果,证明了在空气和水环境中非特异性粘附力破裂引起的瞬态响应。还给出了将几何参数与传感器性能相关的分析结果。

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