首页> 美国卫生研究院文献>The Journal of Physiology >Electrophysiology of guinea-pig cerebellar nuclear cells in the in vitro brain stem-cerebellar preparation.
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Electrophysiology of guinea-pig cerebellar nuclear cells in the in vitro brain stem-cerebellar preparation.

机译:豚鼠小脑核细胞在体外脑干小脑制备中的电生理学。

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摘要

1. Intracellular recordings were obtained from cerebellar nuclear neurones in the isolated brain stem-cerebellar preparation of guinea-pigs in vitro. The electrical properties of the cells were quite similar to those reported in in vitro slice studies. They had an average resting potential of -56.7 +/- 1.8 mV, an input resistance of 23.8 +/- 4.9 M omega, and a time constant of 12.5 +/- 2.7 ms. The action potentials had an average amplitude of 57.3 +/- 5.28 mV (n = 20). 2. In addition to the ionic mechanisms required for the generation of the fast action potential, cerebellar nuclear neurones displayed a low-threshold Ca2+-dependent spike which produced a powerful rebound excitation following anodal break. This type of electroresponsiveness was absent in the slice preparation. 3. The anodal break response was further enhanced by the presence of a non-inactivating Na+ conductance similar to that described in Purkinje cells. 4. Following electrical stimulation of the cerebellar cortex or the underlying white matter, excitatory and inhibitory synaptic potentials (EPSP-IPSP sequences) could be recorded in cerebellar nuclear neurones. The EPSPs were elicited by direct activation of collaterals of mossy or climbing fibre afferents. The IPSPs followed direct or orthodromic Purkinje cell activation. 5. The integrity of the olivo-cerebellar system was tested by the administration of harmaline which produced powerful EPSP-IPSP sequences or pure IPSPs in cerebellar nuclear neurones. These IPSPs were often followed by a rebound firing of the cells. 6. These results indicate that the olivo-cerebellar pathway, in addition to its activation of the cerebellar cortex, exerts a powerful and complex set of synaptic events on cerebellar nuclear cells. As such it is a true afferent system, having a distinct role in cerebellar physiology.
机译:1.从豚鼠分离的脑干-小脑制备物中的小脑核神经元获得细胞内记录。细胞的电学性质与体外切片研究中报道的非常相似。它们的平均静息电位为-56.7 +/- 1.8 mV,输入电阻为23.8 +/- 4.9 M omega,时间常数为12.5 +/- 2.7 ms。动作电位的平均幅度为57.3 +/- 5.28 mV(n = 20)。 2.除了产生快速动作电位所需的离子机制外,小脑核神经元还显示出低阈值的Ca2 +依赖性刺突,在阳极断裂后产生强大的反弹激发。在切片制备中不存在这种类型的电响应性。 3.由于存在与Purkinje细胞中所述类似的非灭活Na +电导,阳极断裂反应得到了进一步增强。 4.小脑皮层或潜在的白质受到电刺激后,小脑核神经元中可能记录有兴奋性和抑制性突触电位(EPSP-IPSP序列)。 EPSP是由苔藓或攀缘纤维传入的侧支直接激活引起的。 IPSP遵循直接或正交的浦肯野细胞激活。 5.通过使用harmaline来测试小脑小脑系统的完整性,后者在小脑核神经元中产生了强大的EPSP-IPSP序列或纯IPSPs。这些IPSP通常伴随着细胞的回弹。 6.这些结果表明,小脑-小脑途径除了激活小脑皮层外,还对小脑核细胞产生一系列强大而复杂的突触事件。因此,它是一个真正的传入系统,在小脑生理学中具有独特的作用。

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