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Multi-modal biochip for simultaneous, real-time measurement of adhesion and electrical activity of neurons in culture

机译:多模式生物芯片,可同时实时测量培养物中神经元的粘附和电活动

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Recent evidence suggests that integrin-mediated adhesion of neurons has immediate functional implications for learning and memory. In addition, adhesion of neurons to artificial substrates often determines the effectiveness and life of implants in the brain and peripheral nervous system. In this study, we present a novel biochip capable of simultaneous, quantitative, real-time monitoring of integrin-mediated adhesion and electrophysiology of primary neurons in vitro. The proposed technology combines acoustic micro-resonators capable of tracking changes in mechanics of the adhering neuronal layer, and microelectrode arrays for recording extracellular unit activity. Our results showed in four different experimental paradigms that the acoustic sensor response to adhering cells is correlated to integrin-mediated adhesion and that the micro-sensor is capable of monitoring the dynamics of neuronal adhesion over a period of 9 days. Finally, using our unique dual measurement platform, we performed simultaneous, real-time measurement of integrin-mediated adhesion and single cell electrophysiology in a neuronal culture. The sensitivities of the micro-resonators were 4-5 orders of magnitude greater than the sensitivity of the macro-scale resonators in response to adhering neurons. This multi-functional sensor platform offers insight into the interplay between integrin-mediated adhesion and neural function on a temporal resolution beyond any currently available experimental method and can therefore potentially lead to novel discoveries on the interactions between neuronal adhesion and function.
机译:最近的证据表明,整联蛋白介导的神经元粘附对学习和记忆具有直接的功能意义。另外,神经元对人造基质的粘附通常决定着大脑和周围神经系统中植入物的有效性和寿命。在这项研究中,我们提出了一种新型的生物芯片,能够同时,定量,实时监测整合素介导的粘附和体外初级神经元的电生理。提出的技术结合了能够跟踪粘附神经元层力学变化的声学微谐振器和用于记录细胞外单位活动的微电极阵列。我们的结果在四个不同的实验范式中表明,声传感器对粘附细胞的反应与整联蛋白介导的粘附相关,并且微传感器能够在9天的时间内监测神经元粘附的动态。最后,使用我们独特的双重测量平台,我们在神经元培养物中同时进行了整合素介导的粘附和单细胞电生理的实时测量。响应于粘附的神经元,微谐振器的灵敏度比宏观谐振器的灵敏度高4-5个数量级。该多功能传感器平台可提供超越当前任何可用实验方法的时间分辨率下整合素介导的粘附与神经功能之间相互作用的洞察力,因此可以潜在地导致神经元粘附与功能之间相互作用的新发现。

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