Massobrio Paolo, Massobrio Giuseppe, Martinoia Sergio
Neuroengineering and Bio-nanoTechnology Laboratory, Department of Informatics, Bioengineering, Robotics, System Engineering, University of Genova Genova, Italy.
Front Neurosci. 2016 Jun 21;10:282. doi: 10.3389/fnins.2016.00282. eCollection 2016.
Microtransducer arrays, both metal microelectrodes and silicon-based devices, are widely used as neural interfaces to measure, extracellularly, the electrophysiological activity of excitable cells. Starting from the pioneering works at the beginning of the 70's, improvements in manufacture methods, materials, and geometrical shape have been made. Nowadays, these devices are routinely used in different experimental conditions (both in vivo and in vitro), and for several applications ranging from basic research in neuroscience to more biomedical oriented applications. However, the use of these micro-devices deeply depends on the nature of the interface (coupling) between the cell membrane and the sensitive active surface of the microtransducer. Thus, many efforts have been oriented to improve coupling conditions. Particularly, in the latest years, two innovations related to the use of carbon nanotubes as interface material and to the development of micro-structures which can be engulfed by the cell membrane have been proposed. In this work, we review what can be simulated by using simple circuital models and what happens at the interface between the sensitive active surface of the microtransducer and the neuronal membrane of in vitro neurons. We finally focus our attention on these two novel technological solutions capable to improve the coupling between neuron and micro-nano transducer.
微传感器阵列,包括金属微电极和硅基器件,被广泛用作神经接口,用于在细胞外测量可兴奋细胞的电生理活动。自70年代初的开创性工作以来,制造方法、材料和几何形状都有了改进。如今,这些设备在不同的实验条件下(体内和体外)都有常规应用,并且用于从神经科学基础研究到更多生物医学导向应用等多种用途。然而,这些微器件的使用在很大程度上取决于细胞膜与微传感器敏感活性表面之间的界面(耦合)性质。因此,许多努力都致力于改善耦合条件。特别是近年来,有人提出了两项创新,一是使用碳纳米管作为界面材料,二是开发可被细胞膜吞噬的微结构。在这项工作中,我们回顾了使用简单电路模型可以模拟的内容,以及微传感器敏感活性表面与体外神经元的神经元膜之间的界面上发生的情况。我们最终将注意力集中在这两种能够改善神经元与微纳传感器之间耦合的新颖技术解决方案上。