Grattarola M, Martinoia S
Department of Biophysical and Electronic Engineering (DIBE), University of Genoa, Italy.
IEEE Trans Biomed Eng. 1993 Jan;40(1):35-41. doi: 10.1109/10.204769.
This paper is devoted to a detailed characterization of the neuron-to-microtransducer junction, based on the equivalent electric-circuit approach. As a result, recording of action potentials can be simulated with the general-purpose network-analysis program SPICE. Both noble-metal microelectrodes and insulated-gate FET's are considered. The responses of such devices are characterized as functions of several parameters, e.g., sealing impedance, density of ionic currents in the cell membrane, and spatial discontinuities of the adhesion process. It is shown that the various signal shapes reported in the literature can be reproduced and interpreted in terms of time derivatives of the action potential. In this way, the shape of any experimental signal can be interpreted on the basis of a specific sealing condition. Possible future improvements in microtransducer design, based on the proposed approach, are also suggested.
本文基于等效电路方法,致力于对神经元与微传感器连接进行详细表征。结果表明,可使用通用网络分析程序SPICE来模拟动作电位的记录。文中考虑了贵金属微电极和绝缘栅场效应晶体管。这些器件的响应被表征为几个参数的函数,例如密封阻抗、细胞膜中离子电流的密度以及粘附过程的空间不连续性。结果表明,文献中报道的各种信号形状可以根据动作电位的时间导数进行再现和解释。通过这种方式,任何实验信号的形状都可以基于特定的密封条件进行解释。基于所提出的方法,还提出了微传感器设计未来可能的改进方向。