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Action potential conduction in the terminal arborisation of nociceptive C-fibre afferents

机译:伤害性C纤维传入末端末端树状结构中的动作电位传导

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摘要

Recordings of single human peroneal C-fibres and rat saphenous C-fibres confirm two different patterns of conduction at branching points. In general, an action potential (AP) arising from one terminal branch may be propagated not only centrally, but also antidromically into the other branches of the terminal arborisation. If a stimulus activates several converging branches of one unit, at each branching point only the AP arriving first from the simultaneously activated daughter branches will be propagated centrally, resetting the slower branches. However, occasionally a single electrical stimulus may evoke a double response in the parent axon. In this case, these two responses apparently originate from different terminal branches and require unidirectional conduction block to prevent the faster AP from invading and resetting the slower-conducting terminal. This conclusion is supported by the notion that when such a double response occurs, both responses immediately show additional activity-dependent slowing of the conduction velocity due to frequency increase in the parent axon (two spikes per stimulus, one from each of the two excited branches). A comparable discharge pattern in the stem axon can be induced by repetitive paired stimulation of one terminal branch. Then the slowing is induced by the doubled frequency along the whole nerve fibre including the terminal branch. Since in this case not only the stem axon, but also the terminal branches carry two spikes per pulse, activity-dependent slowing is predictably more pronounced. Unidirectional block thus provides insight into the differential amount of activity-dependent slowing (and hence postexcitatory hyperpolarisation) in the stem axon and terminal branches of cutaneous C-fibres. This comparison reveals that more than two-thirds of the slowing can be attributed to the terminal branches, since it is two- to fourfold that observed during double stimulation as compared with the unidirectional block condition. This indicates that the terminal branches are equipped with membrane proteins that are different from those of the parent axon.
机译:单个人腓骨C纤维和大鼠隐性C纤维的记录证实在分支点有两种不同的传导模式。通常,源自一个末端分支的动作电位(AP)不仅可以集中传播,而且还可以抗真菌地传播到末端乔木的其他分支中。如果刺激激活一个单元的多个会聚分支,则在每个分支点,只有从同时激活的子分支首先到达的AP才会集中传播,从而重置较慢的分支。但是,有时单个电刺激可能会在父轴突中引起双重反应。在这种情况下,这两个响应显然来自不同的终端分支,并且需要单向传导阻滞,以防止较快的AP入侵并重置较慢的终端。这一结论得到以下观点的支持:当发生这种双重反应时,由于母体轴突的频率增加(每个刺激有两个尖峰,两个激发分支中的每个出现一个),两个响应立即显示出额外的活动依赖性传导速度减慢。 )。茎突突中可比的放电模式可通过对一个末端分支的重复配对刺激来诱导。然后,沿着包括末端分支在内的整个神经纤维的频率增加了一倍,从而导致减慢速度。由于在这种情况下,不仅茎轴突,而且末端分支每个脉冲携带两个尖峰,因此,与活动有关的减慢预计会更加明显。因此,单向阻滞提供了对皮肤C纤维的茎轴突和末端分支中与活动有关的减缓差异的量(因此引起兴奋后超极化)的见解。该比较表明,超过三分之二的减速可归因于末端分支,因为与单向阻断条件相比,它是双重刺激期间观察到的两倍至四倍。这表明末端分支具有与亲本轴突的膜蛋白不同的膜蛋白。

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