Lüscher H R, Shiner J S
Department of Physiology, University of Bern, Switzerland.
Biophys J. 1990 Dec;58(6):1389-99. doi: 10.1016/S0006-3495(90)82485-1.
Action potential propagation in complex terminal arborizations was simulated using SPICE, a general purpose circuit simulation program. The Hodgkin-Huxley equations were used to simulate excitable membrane compartments. Conduction failure was common at branch points and regularly spaced boutons en passant. More complex arborizations had proportionally more inactive synapses than less complex arborizations. At lower temperature the safety factor for impulse propagation increased, reducing the number of silent synapses in a particular arborization. Small structural differences as well as minute changes in the discharge frequency of the action potential resulted in very different activation patterns of the arborization and terminal boutons. The results suggest that the structural diversity of terminal arborizations allows a wide range of presynaptic information processing. The results from this simulation study are discussed in the context of experimental results on the modulation of synaptic transmission.
使用通用电路模拟程序SPICE对复杂终末分支中的动作电位传播进行了模拟。霍奇金-赫胥黎方程用于模拟可兴奋膜区室。传导失败在分支点和规则间隔的旁支扣结处很常见。更复杂的分支比不太复杂的分支有比例上更多的无活性突触。在较低温度下,冲动传播的安全系数增加,减少了特定分支中沉默突触的数量。微小的结构差异以及动作电位放电频率的微小变化导致分支和终末扣结的激活模式非常不同。结果表明,终末分支的结构多样性允许广泛的突触前信息处理。在突触传递调制的实验结果背景下讨论了该模拟研究的结果。