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A Low-Noise, Modular, and Versatile Analog Front-End Intended for Processing In Vitro Neuronal Signals Detected by Microelectrode Arrays

机译:用于处理通过微电极阵列检测到的体外神经元信号的低噪声,模块化和多功能模拟前端

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摘要

The collection of good quality extracellular neuronal spikes from neuronal cultures coupled to Microelectrode Arrays (MEAs) is a binding requirement to gather reliable data. Due to physical constraints, low power requirement, or the need of customizability, commercial recording platforms are not fully adequate for the development of experimental setups integrating MEA technology with other equipment needed to perform experiments under climate controlled conditions, like environmental chambers or cell culture incubators. To address this issue, we developed a custom MEA interfacing system featuring low noise, low power, and the capability to be readily integrated inside an incubator-like environment. Two stages, a preamplifier and a filter amplifier, were designed, implemented on printed circuit boards, and tested. The system is characterized by a low input-referred noise ( 70?dB), and signal-to-noise ratio values of neuronal recordings comparable to those obtained with the benchmark commercial MEA system. In addition, the system was successfully integrated with an environmental MEA chamber, without harming cell cultures during experiments and without being damaged by the high humidity level. The devised system is of practical value in the development of in vitro platforms to study temporally extended neuronal network dynamics by means of MEAs.
机译:从耦合到微电极阵列(MEAS)的神经元培养物中的优质细胞外神经元穗是收集可靠数据的结合要求。由于物理限制,低功率要求或可定制性需求,商业录音平台没有完全足以开发与在气候控制条件下执行实验所需的其他设备的实验设置的发展,如环境腔室或细胞培养培养箱。为了解决这个问题,我们开发了一种具有低噪声,低功耗的自定义MEA接口系统,以及在孵化器的环境内容易集成的能力。设计,在印刷电路板上实现了两个阶段,前置放大器和滤波器放大器,并测试。该系统的特征在于低输入引用的噪声(70?dB),并且与基准商业MEA系统获得的神经元记录的信噪比值相当。此外,该系统已成功与环境MEA室集成,在实验期间不损害细胞培养,而不会受高湿度水平损坏。设计的系统在开发体外平台上的实用价值,以通过MEAS研究时间延伸的神经元网络动态。

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