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轴-轴突突触的位置及其对甲壳类运动轴突终末突触前抑制的影响

Axoaxonal synapse location and consequences for presynaptic inhibition in crustacean motor axon terminals.

作者信息

Atwood H L, Stevens J K, Marin L

出版信息

J Comp Neurol. 1984 May 1;225(1):64-74. doi: 10.1002/cne.902250108.

Abstract

Serial sections were made of several excitatory nerve terminals in the stretcher muscle of the spider crab, Hyas areneus , to document locations of inhibitory axoaxonal synapses responsible for physiologically powerful presynaptic inhibition. The excitatory terminals are varicose, often with small side branches joined to the main terminal by thin bottlenecks . Axoaxonal synapses occur predominantly on the varicosities, both primary and secondary, with a smaller number on bottlenecks . The distribution is often clustered at specific locations of the excitatory terminal. An electrical model was employed to ascertain the effectiveness of axoaxonal synapses at different locations on the terminal. The model plotted the potential distribution along the terminal with or without a synaptic conductance equivalent to one quantal unit of inhibitory transmitter action. It was assumed from recent work that terminal varicosities are not completely invaded by an action potential. The model predicts that large drops in potentials originating in the main axon occur in the terminals during inhibitory transmitter action, with the largest total drop produced by axoaxonal synapses on the terminal varicosities. The effectiveness of inhibitory action is critically dependent on the dimensions and internal resistance of the bottlenecks . Thus, the geometrical features of the excitatory terminal appear to play a key role in effectiveness of presynaptic inhibition.

摘要

对蜘蛛蟹(Hyas areneus)伸展肌中的几个兴奋性神经末梢制作了连续切片,以记录负责生理上强大的突触前抑制的抑制性轴-轴突触的位置。兴奋性末梢呈曲张状,常有小的侧支通过细瓶颈与主末梢相连。轴-轴突触主要发生在一级和二级曲张体上,在瓶颈处较少。其分布常聚集在兴奋性末梢的特定位置。采用电模型来确定轴-轴突触在末梢不同位置的有效性。该模型绘制了有或没有相当于一个量子单位抑制性递质作用的突触电导时,沿末梢的电位分布。根据最近的研究工作假设,动作电位不会完全侵入末梢曲张体。该模型预测,在抑制性递质作用期间,主轴突产生的电位在末梢会大幅下降,末梢曲张体上的轴-轴突触产生的总电位下降最大。抑制作用的有效性关键取决于瓶颈的尺寸和内阻。因此,兴奋性末梢的几何特征似乎在突触前抑制的有效性中起关键作用。

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