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体内大鼠轴突末梢动作电位抑制的抗性。

Resistance to action potential depression of a rat axon terminal in vivo.

机构信息

Department of Neuroscience, Erasmus MC, University Medical Center Rotterdam, 3015 GE Rotterdam, The Netherlands.

Department of Neuroscience, Erasmus MC, University Medical Center Rotterdam, 3015 GE Rotterdam, The Netherlands

出版信息

Proc Natl Acad Sci U S A. 2017 Apr 18;114(16):4249-4254. doi: 10.1073/pnas.1619433114. Epub 2017 Apr 3.

Abstract

The shape of the presynaptic action potential (AP) has a strong impact on neurotransmitter release. Because of the small size of most terminals in the central nervous system, little is known about the regulation of their AP shape during natural firing patterns in vivo. The calyx of Held is a giant axosomatic terminal in the auditory brainstem, whose biophysical properties have been well studied in slices. Here, we made whole-cell recordings from calyceal terminals in newborn rat pups. The calyx showed a characteristic burst firing pattern, which has previously been shown to originate from the cochlea. Surprisingly, even for frequencies over 200 Hz, the AP showed little or no depression. Current injections showed that the rate of rise of the AP depended strongly on its onset potential, and that the membrane potential after the AP () was close to the value at which no depression would occur during high-frequency activity. Immunolabeling revealed that Na1.6 is already present at the calyx shortly after its formation, which was in line with the fast recovery from AP depression that we observed in slice recordings. Our findings thus indicate that fast recovery from depression and an inter-AP membrane potential that minimizes changes on the next AP in vivo, together enable high timing precision of the calyx of Held already shortly after its formation.

摘要

动作电位(AP)的形状对神经递质的释放有很强的影响。由于中枢神经系统中大多数末梢的体积较小,因此对于它们在体内自然放电模式下的 AP 形状的调节知之甚少。 听脑干中的巨大轴突-胞体终末是一种巨大的轴突-胞体终末,其在切片中的生物物理特性已得到很好的研究。 在这里,我们从新生大鼠幼仔的 calyx 末梢进行了全细胞记录。 calyx 显示出特征性的爆发放电模式,先前已证明该模式源自耳蜗。 令人惊讶的是,即使在 200Hz 以上的频率下,AP 也几乎没有或没有衰减。 电流注入表明,AP 的上升速率强烈依赖于其起始电位,并且 AP 之后的膜电位()接近在高频活动期间不会发生衰减的电位。免疫标记显示,Na1.6 在其形成后不久就在 calyx 中存在,这与我们在切片记录中观察到的 AP 衰减的快速恢复一致。 因此,我们的发现表明,快速从衰减中恢复以及 AP 之间的膜电位使体内下一个 AP 的变化最小化,这使得 calyx 能够在形成后不久就具有很高的定时精度。

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