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本文引用的文献

1
Local field potentials and the encoding of whisker deflections by population firing synchrony in thalamic barreloids.局部场电位与丘脑桶状核中群体放电同步对触须偏转的编码
J Neurophysiol. 2003 Apr;89(4):2137-45. doi: 10.1152/jn.00582.2002. Epub 2002 Dec 27.
2
Response properties of whisker-associated trigeminothalamic neurons in rat nucleus principalis.大鼠主核中与触须相关的三叉丘脑神经元的反应特性
J Neurophysiol. 2003 Jan;89(1):40-56. doi: 10.1152/jn.00272.2002.
3
Cortical damping: analysis of thalamocortical response transformations in rodent barrel cortex.皮质阻尼:啮齿动物桶状皮质中丘脑皮质反应转换的分析
Cereb Cortex. 2003 Jan;13(1):33-44. doi: 10.1093/cercor/13.1.33.
4
Dendroarchitecture of relay cells in thalamic barreloids: a substrate for cross-whisker modulation.丘脑桶状核中继细胞的树突结构:交叉触须调制的一个基质
J Neurosci. 2002 Jul 15;22(14):6186-94. doi: 10.1523/JNEUROSCI.22-14-06186.2002.
5
Different temporal processing of sensory inputs in the rat thalamus during quiescent and information processing states in vivo.大鼠丘脑在体内静止和信息处理状态下对感觉输入的不同时间处理。
J Physiol. 2002 Mar 1;539(Pt 2):567-78. doi: 10.1113/jphysiol.2001.013283.
6
Divergent movement of adjacent whiskers.相邻触须的分开运动。
J Neurophysiol. 2002 Mar;87(3):1440-8. doi: 10.1152/jn.00539.2001.
7
Properties of primary sensory (lemniscal) synapses in the ventrobasal thalamus and the relay of high-frequency sensory inputs.腹侧基底丘脑的初级感觉(lemniscal)突触特性及高频感觉输入的中继
J Neurophysiol. 2002 Feb;87(2):946-53. doi: 10.1152/jn.00426.2001.
8
Whisker maps of neuronal subclasses of the rat ventral posterior medial thalamus, identified by whole-cell voltage recording and morphological reconstruction.通过全细胞膜片钳记录和形态学重建鉴定的大鼠腹后内侧丘脑神经元亚类的触须图。
J Physiol. 2002 Jan 15;538(Pt 2):495-515. doi: 10.1113/jphysiol.2001.012334.
9
Processing in layer 4 of the neocortical circuit: new insights from visual and somatosensory cortex.新皮层回路第4层的处理过程:来自视觉和体感皮层的新见解。
Curr Opin Neurobiol. 2001 Aug;11(4):488-97. doi: 10.1016/s0959-4388(00)00239-7.
10
Temporal frequency of whisker movement. I. Representations in brain stem and thalamus.触须运动的时间频率。I. 脑干和丘脑的表征。
J Neurophysiol. 2001 Jul;86(1):339-53. doi: 10.1152/jn.2001.86.1.339.

在触须到桶状小体通路中高频感觉信号的传递。

The relay of high-frequency sensory signals in the Whisker-to-barreloid pathway.

作者信息

Deschênes Martin, Timofeeva Elena, Lavallée Philippe

机构信息

Centre de Recherche Université Laval-Robert Giffard, Hôpital Robert-Giffard, Quebec City, Quebec G1J 2G3, Canada.

出版信息

J Neurosci. 2003 Jul 30;23(17):6778-87. doi: 10.1523/JNEUROSCI.23-17-06778.2003.

DOI:10.1523/JNEUROSCI.23-17-06778.2003
PMID:12890771
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6740730/
Abstract

The present study investigated the operational features of whisker-evoked EPSPs in barreloid cells and the ability of the whisker-to-barreloid pathway to relay high rates of whisker deflection in lightly anesthetized rats. Results show that lemniscal EPSPs are single-fiber events with fast rise times (<500 microsec) that strongly depress at short inter-EPSP intervals. They occur at short latencies (3.84 +/- 0.96 msec) with little jitters (<300 microsec) after electrical stimulation of the whisker follicle. Waveform analysis indicates that one to three lemniscal axons converge on individual barreloid cells to produce EPSPs of similar rise times but different amplitudes. When challenged by high rates of whisker deflection, cells in the whisker-to-barreloid pathway demonstrate a remarkable frequency-following ability. Primary vibrissa afferents could follow in a phase-locked manner trains of sinusoidal deflections at up to 1 kHz. Although trigeminothalamic cells could still faithfully follow deflection rates of 200-300 Hz, the actual frequency-following ability of individual cells depends on the amplitude, velocity, and direction of displacements. The discharges of trigeminothalamic cells induce corresponding phase-locked EPSPs in barreloid cells, which trigger burst discharges at stimulus onset. During the following cycles of the stimulus train, few action potentials ensue because of the strong synaptic depression at lemniscal synapses. It is concluded that the whisker-to-barreloid pathway can relay vibratory inputs with a high degree of temporal precision, but that the relay of this information to the cerebral cortex requires the action of modulators, and possibly phase-locked discharges among an ensemble of relay cells.

摘要

本研究调查了在轻度麻醉大鼠中,触须诱发的桶状小体细胞兴奋性突触后电位(EPSP)的操作特征,以及触须到桶状小体通路传递高频率触须偏转的能力。结果表明,丘系EPSP是单纤维事件,上升时间快(<500微秒),在短的EPSP间隔内会强烈抑制。在电刺激触须毛囊后,它们出现的潜伏期短(3.84±0.96毫秒),抖动小(<300微秒)。波形分析表明,一到三根丘系轴突汇聚到单个桶状小体细胞上,产生上升时间相似但幅度不同的EPSP。当受到高频率触须偏转的挑战时,触须到桶状小体通路中的细胞表现出显著的频率跟随能力。初级触须传入神经能够以锁相方式跟随高达1千赫兹的正弦形偏转序列。虽然三叉丘脑细胞仍然能够忠实地跟随200 - 300赫兹的偏转频率,但单个细胞的实际频率跟随能力取决于位移的幅度、速度和方向。三叉丘脑细胞的放电在桶状小体细胞中诱发相应的锁相EPSP,在刺激开始时触发爆发性放电。在刺激序列的后续周期中,由于丘系突触处强烈的突触抑制,几乎没有动作电位产生。得出的结论是,触须到桶状小体通路能够以高度的时间精度传递振动输入,但将此信息传递到大脑皮层需要调制器的作用,并且可能需要中继细胞群体之间的锁相放电。