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颞叶突触信号传导的细胞基础:大鼠听觉丘脑的体外电生理研究

Cellular basis of temporal synaptic signalling: an in vitro electrophysiological study in rat auditory thalamus.

作者信息

Hu B

机构信息

Neuroscience Unit, Loeb Research Institute, Ottawa Civic Hospital, University of Ottawa, Ontario, Canada.

出版信息

J Physiol. 1995 Feb 15;483 ( Pt 1)(Pt 1):167-82. doi: 10.1113/jphysiol.1995.sp020576.

DOI:10.1113/jphysiol.1995.sp020576
PMID:7776230
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1157880/
Abstract
  1. The cellular mechanisms underlying temporal synaptic signalling of tectothalamic pathways were investigated in rat medial geniculate body (MGB) maintained in vitro. Stimulation of the brachium of the inferior colliculus elicited either a short latency, single- (or dual-) spike or a long latency (10-80 ms) burst in MGB neurones. The delayed burst response was found in most non-lemniscal or caudodorsal MGB (MGd) neurones, whereas single-spike units were mainly seen in the lemniscal ventral MGB (MGv). Population latency analysis revealed that the overall relay time of tectothalamic transmission is approximately 50 ms, with at least two excitation peaks occurring around 8 and 15 ms, respectively. 2. Intracellular recordings showed that the delayed burst responses in MGd neurones were mediated by an EPSP-triggered low threshold spike (LTS). Small variations in either the membrane voltage or in EPSP amplitude induced significant shifts of LTS latency. 3. Compared with MGv cells, MGd neurones exhibited a more negative resting membrane potential and a prolonged EPSP; they lacked an apparent hyperpolarization-activated inward rectifier (Ih). These factors seem to lead collectively to a dominant occurrence of long latency burst response in the MGd. In the majority of single-spiking MGv cells that expressed a clear Ih, application of Cs+ consistently hyperpolarized the cell, which transformed a single-spike synaptic response into an EPSP-LTS burst or a subthreshold EPSP. 4. Taken together, these data suggest that the monosynaptic tectothalamic pathways are capable of introducing a ventrodorsal gradient in auditory response time. This synaptic activity pattern is probably dominantly regulated by a set of membrane conductances expressed endogenously in thalamocortical neurones.
摘要
  1. 在体外培养的大鼠内侧膝状体(MGB)中,研究了顶盖丘脑通路时间性突触信号传导的细胞机制。刺激下丘臂可在MGB神经元中引发短潜伏期的单(或双)峰放电,或长潜伏期(10 - 80毫秒)的爆发式放电。延迟爆发反应见于大多数非lemniscal或尾背侧MGB(MGd)神经元,而单峰放电单位主要见于lemniscal腹侧MGB(MGv)。群体潜伏期分析显示,顶盖丘脑传递的总体中继时间约为50毫秒,分别在约8毫秒和15毫秒出现至少两个兴奋峰。2. 细胞内记录表明,MGd神经元中的延迟爆发反应由EPSP触发的低阈值尖峰(LTS)介导。膜电压或EPSP幅度的微小变化会导致LTS潜伏期的显著改变。3. 与MGv细胞相比,MGd神经元表现出更负的静息膜电位和延长的EPSP;它们缺乏明显的超极化激活内向整流器(Ih)。这些因素似乎共同导致MGd中长潜伏期爆发反应的占主导地位。在大多数表达明显Ih的单峰放电MGv细胞中,应用Cs + 持续使细胞超极化,将单峰突触反应转变为EPSP - LTS爆发或阈下EPSP。4. 综上所述,这些数据表明单突触顶盖丘脑通路能够在听觉反应时间上引入腹背梯度。这种突触活动模式可能主要由丘脑皮质神经元内源性表达的一组膜电导调节。

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