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大鼠外侧膝状体核内中间神经元的体外电生理和形态学特性

Electrophysiological and morphological properties of interneurones in the rat dorsal lateral geniculate nucleus in vitro.

作者信息

Williams S R, Turner J P, Anderson C M, Crunelli V

机构信息

Department of Physiology, University of Wales Cardiff, UK.

出版信息

J Physiol. 1996 Jan 1;490 ( Pt 1)(Pt 1):129-47. doi: 10.1113/jphysiol.1996.sp021131.

DOI:10.1113/jphysiol.1996.sp021131
PMID:8745283
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1158652/
Abstract
  1. Intracellular recordings were made from putative interneurones (n = 24) and thalamocortical (TC) projection neurones (n = 45) in slice preparations of the rat dorsal lateral geniculate nucleus (dLGN) in order to compare the electrophysiological properties of these neuronal types. 2. Intracellular injection of biocytin to electrophysiologically identified neurones (n = 34) revealed the morphology of putative interneurones (n = 4) to be similar to class B and that of TC neurones (n = 30) to be similar to class A Golgi-impregnated neurones. 3. Interneurones had resting membrane potentials (-52 mV) relatively positive to those of TC neurones (-63 mV), shorter time constants (36.8 and 58.2 ms, respectively), but similar steady-state input resistances (164 and 180 M omega, respectively). Steady-state voltage-current relationships were nearly linear in interneurones, but highly non-linear in TC neurones. 4. The structure of action potential firing evoked at the break of hyperpolarizing voltage transients was dependent upon neuronal type. Interneurones fired a single action potential or a burst of action potentials with a maximum frequency of < 130 Hz, whilst TC neurones fired a high frequency burst with a minimum frequency of > 250 Hz. In addition, well-defined burst firing of action potentials in response to depolarizing voltage excursions, from membrane potentials negative to -65 mV, could be evoked in TC neurones, but not in interneurones. 5. The directly evoked action potentials of interneurones were characterized by an initial slow pre-potential preceding the fast upstroke of the action potential. The amplitude and width of interneurones' action potentials were smaller than those of TC neurones and the amplitude and duration of the single action potential after-hyperpolarization were greater in interneurones. Both interneurones and TC neurones fired action potentials repetitively in response to suprathreshold voltage excursions, with interneurones demonstrating a greater degree of spike-frequency adaptation. Following a train of action potentials, interneurones and TC neurones generated a slow after-hyperpolarizing potential: in interneurones but not TC neurones this potential was followed by a slow depolarizing potential. 6. An intrinsic, subthreshold membrane potential oscillatory activity with a mean frequency of approximately 8 Hz was observed in interneurones. 7. Electrical stimulation of the optic tract evoked in interneurones apparently pure EPSPs, pure IPSPs or a mixture of EPSPs and IPSPs. EPSPs were found to be biphasic and mediated by the activation of non-N-methyl-D-aspartate (NMDA) and NMDA excitatory amino acid receptors. IPSPs and the response to the iontophoretic application of GABA were found to reverse between -65 and -70 mV. The application of GABAB receptor agonists failed to affect the membrane properties of six of seven interneurones tested. In addition spontaneous EPSPs and IPSPs were recorded in interneurones. 8. These results demonstrate that the electrophysiological properties of putative interneurones are distinct from those of TC neurones of the rat dLGN. The implications of these findings for the control of visual responsiveness of TC neurones are discussed.
摘要
  1. 为比较大鼠背外侧膝状核(dLGN)切片制备中假定的中间神经元(n = 24)和丘脑皮质(TC)投射神经元(n = 45)的电生理特性,进行了细胞内记录。2. 对电生理鉴定的神经元(n = 34)进行生物胞素细胞内注射,结果显示假定的中间神经元(n = 4)的形态与B类神经元相似,而TC神经元(n = 30)的形态与A类高尔基染色神经元相似。3. 中间神经元的静息膜电位(-52 mV)相对于TC神经元(-63 mV)较为正向,时间常数较短(分别为36.8和58.2 ms),但稳态输入电阻相似(分别为164和180 MΩ)。中间神经元的稳态电压-电流关系接近线性,而TC神经元则高度非线性。4. 超极化电压瞬变中断时诱发的动作电位发放结构取决于神经元类型。中间神经元发放单个动作电位或一串动作电位,最大频率<130 Hz,而TC神经元发放高频串,最小频率>250 Hz。此外,从膜电位负于-65 mV开始的去极化电压偏移可诱发TC神经元产生明确的动作电位爆发发放,但中间神经元则不能。5. 中间神经元直接诱发的动作电位的特征是在动作电位快速上升之前有一个初始缓慢的预电位。中间神经元动作电位的幅度和宽度小于TC神经元,中间神经元单个动作电位后超极化的幅度和持续时间更大。中间神经元和TC神经元在阈上电压偏移时均重复发放动作电位,中间神经元表现出更大程度的峰频率适应。在一串动作电位之后,中间神经元和TC神经元产生缓慢的后超极化电位:在中间神经元中,该电位之后接着是缓慢的去极化电位,而TC神经元则没有。6. 在中间神经元中观察到一种内在的、阈下膜电位振荡活动,平均频率约为8 Hz。7. 对视束的电刺激在中间神经元中诱发明显的纯兴奋性突触后电位(EPSP)、纯抑制性突触后电位(IPSP)或EPSP和IPSP的混合。发现EPSP是双相的,由非N-甲基-D-天冬氨酸(NMDA)和NMDA兴奋性氨基酸受体的激活介导。IPSP以及对离子电渗法应用γ-氨基丁酸(GABA)的反应在-65至-70 mV之间反转。在测试的七个中间神经元中,六个应用GABAB受体激动剂未能影响其膜特性。此外,在中间神经元中记录到自发的EPSP和IPSP。8. 这些结果表明,大鼠dLGN中假定的中间神经元的电生理特性与TC神经元不同。讨论了这些发现对TC神经元视觉反应性控制的意义。