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本文引用的文献

1
Modeling the generation of output by the cerebellar nuclei.小脑核输出的生成建模。
Neural Netw. 2013 Nov;47:112-9. doi: 10.1016/j.neunet.2012.11.006. Epub 2012 Nov 21.
2
STD-dependent and independent encoding of input irregularity as spike rate in a computational model of a cerebellar nucleus neuron.在小脑核神经元的计算模型中,输入不规则性的 STD 依赖和独立编码为尖峰率。
Cerebellum. 2011 Dec;10(4):667-82. doi: 10.1007/s12311-011-0295-9.
3
The mysterious microcircuitry of the cerebellar nuclei.小脑核的神秘微电路。
J Physiol. 2011 Jul 15;589(Pt 14):3441-57. doi: 10.1113/jphysiol.2010.201582. Epub 2011 Apr 26.
4
Determinants of synaptic integration and heterogeneity in rebound firing explored with data-driven models of deep cerebellar nucleus cells.利用小脑深部核团细胞的数据驱动模型探索反弹放电中突触整合和异质性的决定因素。
J Comput Neurosci. 2011 Jun;30(3):633-58. doi: 10.1007/s10827-010-0282-z. Epub 2010 Nov 4.
5
Enhanced synaptic inhibition disrupts the efferent code of cerebellar Purkinje neurons in leaner Cav2.1 Ca 2+ channel mutant mice.增强的突触抑制破坏了 Cav2.1 钙通道突变瘦鼠小脑浦肯野神经元的传出编码。
Cerebellum. 2012 Sep;11(3):666-80. doi: 10.1007/s12311-010-0210-9.
6
Arrangement of Kv1 alpha subunits dictates sensitivity to tetraethylammonium.Kv1 亚型 alpha 亚基的排列决定了对四乙铵的敏感性。
J Gen Physiol. 2010 Sep;136(3):273-82. doi: 10.1085/jgp.200910398.
7
A new Kv1.2 channelopathy underlying cerebellar ataxia.一种新的 Kv1.2 通道病,其病因是小脑共济失调。
J Biol Chem. 2010 Oct 15;285(42):32160-73. doi: 10.1074/jbc.M110.153676. Epub 2010 Aug 9.
8
Electrogenic tuning of the axon initial segment.轴突起始段的电致调谐。
Neuroscientist. 2009 Dec;15(6):651-68. doi: 10.1177/1073858409341973.
9
Patterns and pauses in Purkinje cell simple spike trains: experiments, modeling and theory.浦肯野细胞简单锋电位序列中的模式与停顿:实验、建模与理论
Neuroscience. 2009 Sep 1;162(3):816-26. doi: 10.1016/j.neuroscience.2009.02.040. Epub 2009 Feb 26.
10
Localization and targeting of voltage-dependent ion channels in mammalian central neurons.哺乳动物中枢神经元中电压依赖性离子通道的定位与靶向
Physiol Rev. 2008 Oct;88(4):1407-47. doi: 10.1152/physrev.00002.2008.

一种特定的 KV1 异源四聚体通道稳定了固有起搏,并调节了深部小脑核神经元向丘脑靶标的输出。

A defined heteromeric KV1 channel stabilizes the intrinsic pacemaking and regulates the output of deep cerebellar nuclear neurons to thalamic targets.

机构信息

International Centre for Neurotherapeutics, Dublin City University, Glasnevin, Dublin 9, Ireland.

出版信息

J Physiol. 2013 Apr 1;591(7):1771-91. doi: 10.1113/jphysiol.2012.249706. Epub 2013 Jan 14.

DOI:10.1113/jphysiol.2012.249706
PMID:23318870
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3624850/
Abstract

The output of the cerebellum to the motor axis of the central nervous system is orchestrated mainly by synaptic inputs and intrinsic pacemaker activity of deep cerebellar nuclear (DCN) projection neurons. Herein, we demonstrate that the soma of these cells is enriched with K(V)1 channels produced by mandatory multi-merization of K(V)1.1, 1.2 α and KV β2 subunits. Being constitutively active, the K(+) current (IK(V)1) mediated by these channels stabilizes the rate and regulates the temporal precision of self-sustained firing of these neurons. Placed strategically, IK(V)1 provides a powerful counter-balance to prolonged depolarizing inputs, attenuates the rebound excitation, and dampens the membrane potential bi-stability. Somatic location with low activation threshold render IK(V)1 instrumental in voltage-dependent de-coupling of the axon initial segment from the cell body of projection neurons, impeding invasion of back-propagating action potentials into the somato-dendritic compartment. The latter is also demonstrated to secure the dominance of clock-like somatic pacemaking in driving the regenerative firing activity of these neurons, to encode time variant inputs with high fidelity. Through the use of multi-compartmental modelling and retro-axonal labelling, the physiological significance of the described functions for processing and communication of information from the lateral DCN to thalamic relay nuclei is established.

摘要

小脑向中枢神经系统运动轴的输出主要由深核(DCN)投射神经元的突触输入和内在起搏活动来协调。在此,我们证明这些细胞的体部富含由 K(V)1.1、1.2α 和 KV β2 亚基的强制性多聚化产生的 K(V)1 通道。这些通道介导的 K(+)电流(IK(V)1)由于其组成性激活,稳定了自激发放电的频率并调节了其时间精度。这种电流被战略性地放置,为长时间的去极化输入提供了强大的制衡,减弱了反弹兴奋,并抑制了膜电位双稳态。其具有低激活阈值的体部位置使 IK(V)1 成为轴突起始段与投射神经元体部电压依赖性解耦的有力工具,阻止逆行动作电位侵入体树突区。后者还被证明可以确保时钟样体细胞起搏在驱动这些神经元再生性放电活动中的主导地位,以高保真度对时变输入进行编码。通过使用多室模型和逆行轴突标记,确立了从外侧 DCN 到丘脑中继核进行信息处理和通讯的描述性功能的生理意义。