Nagarajan S S, Durand D M, Warman E N
Department of Biomedical Engineering, Case Western Reserve University, Cleveland, OH 44106.
IEEE Trans Biomed Eng. 1993 Nov;40(11):1175-88. doi: 10.1109/10.245636.
In this paper we present an analysis of magnetic stimulation of finite length neuronal structures using computer simulations. Models of finite neuronal structures in the presence of extrinsically applied electric fields indicate that excitation can be characterized by two driving functions: one due to field gradients and the other due to fields at the boundaries of neuronal structures. It is found that boundary field driving functions play an important role in governing excitation characteristics during magnetic stimulation. Simulations indicate that axons whose lengths are short compared to the spatial extent of the induced field are easier to excite than longer axons of the same diameter. Simulations also indicate that independent cellular dendritic processes are probably not excited during magnetic stimulation. Analysis of the temporal distribution of induced fields indicates that the temporal shape of the stimulus waveform modulates excitation thresholds and propagation of action potentials.
在本文中,我们通过计算机模拟对有限长度神经元结构的磁刺激进行了分析。存在外在施加电场时有限神经元结构的模型表明,兴奋可由两种驱动函数来表征:一种是由于场梯度,另一种是由于神经元结构边界处的场。研究发现,边界场驱动函数在磁刺激过程中控制兴奋特性方面起着重要作用。模拟表明,与感应场的空间范围相比长度较短的轴突比相同直径的较长轴突更容易兴奋。模拟还表明,在磁刺激过程中,独立的细胞树突过程可能不会被兴奋。对感应场时间分布的分析表明,刺激波形的时间形状会调节兴奋阈值和动作电位的传播。