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本文引用的文献

1
The origin of the complex spike in cerebellar Purkinje cells.小脑浦肯野细胞复杂峰电位的起源。
J Neurosci. 2008 Jul 23;28(30):7599-609. doi: 10.1523/JNEUROSCI.0559-08.2008.
2
Distribution of Kv3.3 potassium channel subunits in distinct neuronal populations of mouse brain.Kv3.3钾通道亚基在小鼠脑不同神经元群体中的分布。
J Comp Neurol. 2007 Jun 20;502(6):953-72. doi: 10.1002/cne.21353.
3
Voltage-dependent potassium currents during fast spikes of rat cerebellar Purkinje neurons: inhibition by BDS-I toxin.大鼠小脑浦肯野神经元快速尖峰期间的电压依赖性钾电流:BDS-I毒素的抑制作用
J Neurophysiol. 2007 Jan;97(1):563-71. doi: 10.1152/jn.00269.2006. Epub 2006 Oct 25.
4
Behavioral motor dysfunction in Kv3-type potassium channel-deficient mice.Kv3型钾通道缺陷小鼠的行为运动功能障碍。
Genes Brain Behav. 2006 Aug;5(6):472-82. doi: 10.1111/j.1601-183X.2005.00184.x.
5
Cerebellar circuitry as a neuronal machine.作为神经元机器的小脑神经回路
Prog Neurobiol. 2006 Feb-Apr;78(3-5):272-303. doi: 10.1016/j.pneurobio.2006.02.006.
6
Interaction of Kv3 potassium channels and resurgent sodium current influences the rate of spontaneous firing of Purkinje neurons.Kv3钾通道与复苏钠电流的相互作用影响浦肯野神经元的自发放电速率。
J Neurosci. 2006 Apr 26;26(17):4602-12. doi: 10.1523/JNEUROSCI.5204-05.2006.
7
Mutations in voltage-gated potassium channel KCNC3 cause degenerative and developmental central nervous system phenotypes.电压门控钾通道KCNC3的突变会导致退行性和发育性中枢神经系统表型。
Nat Genet. 2006 Apr;38(4):447-51. doi: 10.1038/ng1758. Epub 2006 Feb 26.
8
Olivocerebellar modulation of motor cortex ability to generate vibrissal movements in rat.大鼠中橄榄小脑对运动皮层产生触须运动能力的调制
J Physiol. 2006 Feb 15;571(Pt 1):101-20. doi: 10.1113/jphysiol.2005.102764. Epub 2005 Dec 15.
9
Kv1 channels selectively prevent dendritic hyperexcitability in rat Purkinje cells.Kv1通道选择性地预防大鼠浦肯野细胞中的树突状超兴奋性。
J Physiol. 2005 Dec 1;569(Pt 2):545-57. doi: 10.1113/jphysiol.2005.098053. Epub 2005 Oct 6.
10
Kv1 K+ channels control Purkinje cell output to facilitate postsynaptic rebound discharge in deep cerebellar neurons.Kv1钾离子通道控制浦肯野细胞的输出,以促进小脑深部神经元的突触后反弹放电。
J Neurosci. 2005 Feb 9;25(6):1481-92. doi: 10.1523/JNEUROSCI.3523-04.2005.

浦肯野细胞胞体处的Kv3.3通道对于经典复合锋电位波形的产生是必需的。

Kv3.3 channels at the Purkinje cell soma are necessary for generation of the classical complex spike waveform.

作者信息

Zagha Edward, Lang Eric J, Rudy Bernardo

机构信息

Department of Physiology and Neuroscience, New York University School of Medicine, New York, New York 10016, USA.

出版信息

J Neurosci. 2008 Feb 6;28(6):1291-300. doi: 10.1523/JNEUROSCI.4358-07.2008.

DOI:10.1523/JNEUROSCI.4358-07.2008
PMID:18256249
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2657222/
Abstract

Voltage-gated potassium channel subunit Kv3.3 is prominently expressed in cerebellar Purkinje cells and is known to be important for cerebellar function, as human and mouse movement disorders result from mutations in Kv3.3. To understand these behavioral deficits, it is necessary to know the role of Kv3.3 channels on the physiological responses of Purkinje cells. We studied the function of Kv3.3 channels in regulating the synaptically evoked Purkinje cell complex spike, the massive postsynaptic response to the activation of climbing fiber afferents, believed to be fundamental to cerebellar physiology. Acute slice recordings revealed that Kv3.3 channels are required for generation of the repetitive spikelets of the complex spike. We found that spikelet expression is regulated by somatic, and not by dendritic, Kv3 activity, which is consistent with dual somatic-dendritic recordings that demonstrate spikelet generation at axosomatic membranes. Simulations of Purkinje cell Na+ currents show that the unique electrical properties of Kv3 and resurgent Na+ channels are coordinated to limit accumulation of Na+ channel inactivation and enable rapid, repetitive firing. We additionally show that Kv3.3 knock-out mice produce altered complex spikes in vitro and in vivo, which is likely a cellular substrate of the cerebellar phenotypes observed in these mice. This characterization presents new tools to study complex spike function, cerebellar signaling, and Kv3.3-dependent human and mouse phenotypes.

摘要

电压门控钾通道亚基Kv3.3在小脑浦肯野细胞中显著表达,并且已知其对小脑功能很重要,因为人类和小鼠的运动障碍是由Kv3.3的突变引起的。为了理解这些行为缺陷,有必要了解Kv3.3通道对浦肯野细胞生理反应的作用。我们研究了Kv3.3通道在调节突触诱发的浦肯野细胞复合峰电位中的功能,复合峰电位是对攀缘纤维传入神经激活的大量突触后反应,被认为是小脑生理学的基础。急性脑片记录显示,复合峰电位的重复小波生成需要Kv3.3通道。我们发现小波表达受胞体而非树突的Kv3活性调节,这与双胞体-树突记录一致,后者表明小波在轴突-胞体膜处产生。浦肯野细胞钠电流的模拟表明,Kv3和复苏钠通道的独特电学特性相互协调,以限制钠通道失活的积累并实现快速、重复放电。我们还表明,Kv3.3基因敲除小鼠在体外和体内都会产生改变的复合峰电位,这可能是在这些小鼠中观察到的小脑表型的细胞基础。这一特性为研究复合峰电位功能、小脑信号传导以及Kv3.3依赖的人类和小鼠表型提供了新工具。