Dudel J, Parnas I, Parnas H
Pflugers Arch. 1983 Sep;399(1):1-10. doi: 10.1007/BF00652515.
In excitatory neuromuscular junctions of crayfish quantal synaptic currents were recorded focally by means of a macro-patch-clamp electrode. Through the same electrode the nerve terminal was depolarized by current pulses which elicited quantal postsynaptic currents (pEPSCs). The terminals were electrically inexcitable and the quantum content (m) of pEPSCs increased gradually to a saturation level with rising pulse amplitude. A test-pEPSC was elicited by constant current pulses, and its facilitation (Fc) by a preceding pEPSC of varying amplitude was studied. Amplitude and duration of Fc are measures of the amount of Ca entry during the prepulse. These values had a maximum consistently at a much lower prepulse amplitude than necessary to reach maximum release during the prepulse. The potential dependence of Fc is as expected for a potential dependent Ca-entry into the terminal. The fact that release during the prepulse rose for large depolarizations while Fc and thus Ca-entry decreased, indicates a direct promotion of release by depolarization. In another type of experiment the Ca concentration in the terminal ([Ca]i) was increased greatly by series of depolarizations. During a following test-pEPSC thus [Ca]i was at an approximately constant high level. However, variations of the amplitude of the test depolarization pulse caused changes of the test-pEPSC by several orders of magnitude, which must be attributed to a direct control of quantal release by depolarization. The mechanism of this direct effect of membrane potential is discussed, extending our model of synaptic release which only contained control by [Ca]i. The decisive role of control of release by membrane potential for the termination of release after Ca entry is emphasized.
在小龙虾的兴奋性神经肌肉接头处,通过一个宏观膜片钳电极局部记录了量子突触电流。通过同一个电极,用电流脉冲使神经末梢去极化,从而引发量子化的突触后电流(pEPSCs)。神经末梢在电方面不可兴奋,并且随着脉冲幅度的增加,pEPSCs的量子含量(m)逐渐增加到饱和水平。通过恒定电流脉冲引发一个测试pEPSC,并研究其被不同幅度的前一个pEPSC的易化作用(Fc)。Fc的幅度和持续时间是预脉冲期间钙离子内流数量的指标。这些值始终在一个比预脉冲期间达到最大释放所需幅度低得多的预脉冲幅度下达到最大值。Fc的电位依赖性符合钙离子依赖电位进入末梢的预期。预脉冲期间,对于大的去极化,释放增加,而Fc以及钙离子内流减少,这一事实表明去极化直接促进了释放。在另一类实验中,通过一系列去极化使末梢中的钙离子浓度([Ca]i)大幅增加。因此,在随后的测试pEPSC期间,[Ca]i处于一个大致恒定的高水平。然而,测试去极化脉冲幅度的变化导致测试pEPSC变化了几个数量级,这必须归因于去极化对量子化释放的直接控制。本文讨论了膜电位这种直接效应的机制,扩展了我们仅包含[Ca]i控制的突触释放模型。强调了膜电位对释放的控制在钙离子进入后释放终止中的决定性作用。