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Biocompatibility of a Magnetic Tunnel Junction Sensor Array for the Detection of Neuronal Signals in Culture

机译:磁性隧道结传感器阵列的生物相容性用于检测培养物中的神经元信号。

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摘要

Magnetoencephalography has been established nowadays as a crucial in vivo technique for clinical and diagnostic applications due to its unprecedented spatial and temporal resolution and its non-invasive methods. However, the innate nature of the biomagnetic signals derived from active biological tissue is still largely unknown. One alternative possibility for in vitro analysis is the use of magnetic sensor arrays based on Magnetoresistance. However, these sensors have never been used to perform long-term in vitro studies mainly due to critical biocompatibility issues with neurons in culture. In this study, we present the first biomagnetic chip based on magnetic tunnel junction (MTJ) technology for cell culture studies and show the biocompatibility of these sensors. We obtained a full biocompatibility of the system through the planarization of the sensors and the use of a three-layer capping of SiO2/Si3N4/SiO2. We grew primary neurons up to 20 days on the top of our devices and obtained proper functionality and viability of the overlying neuronal networks. At the same time, MTJ sensors kept their performances unchanged for several weeks in contact with neurons and neuronal medium. These results pave the way to the development of high performing biomagnetic sensing technology for the electrophysiology of in vitro systems, in analogy with Multi Electrode Arrays.
机译:如今,由于其前所未有的时空分辨率和非侵入性方法,磁脑成像已被确立为临床和诊断应用中至关重要的体内技术。但是,仍不清楚来自活性生物组织的生物磁信号的固有性质。体外分析的另一种可能性是使用基于磁阻的磁传感器阵列。但是,这些传感器从未用于长期的体外研究,这主要是由于培养的神经元存在严重的生物相容性问题。在这项研究中,我们介绍了第一个基于磁性隧道结(MTJ)技术的生物磁性芯片,用于细胞培养研究,并展示了这些传感器的生物相容性。通过传感器的平面化和SiO2 / Si3N4 / SiO2三层封盖的使用,我们获得了系统的完全生物相容性。我们在设备顶部使原代神经元生长长达20天,并获得了上层神经元网络的适当功能和生存能力。同时,MTJ传感器与神经元和神经元介质接触的性能在数周内保持不变。这些结果为类似于体外电极阵列的高性能生物磁传感技术的开发铺平了道路,该技术用于体外系统的电生理。

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