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Electrophysiological properties of neurones in the region of the paraventricular nucleus in slices of rat hypothalamus.

机译:大鼠下丘脑切片中脑室旁核区神经元的电生理特性。

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摘要

1. Neurones in the region of the hypothalamic paraventricular nucleus (PVN) of the rat were studied with intracellular recording in the coronal slice preparation. Three types of hypothalamic neurones were distinguished according to their membrane properties and anatomical positions. Lucifer Yellow or ethidium bromide was injected intracellularly to determine the morphology of some recorded cells. 2. The most distinctive electrophysiological characteristic was the low-threshold depolarizing potentials which were totally absent in type I neurones, present but variable in type II neurones and very conspicuous in type III neurones. Type II neurones generally showed relatively small low-threshold depolarizations (26.5 +/- 2.2 mV) which generated at most one to two action potentials. Type III neurones, on the other hand, generated large low-threshold potentials (40.3 +/- 2.8 mV) which gave rise to bursts of three to six fast action potentials. Deinactivation of the low-threshold conductance in both type II and type III neurones was voltage- and time-dependent. Low-threshold potentials persisted in TTX (1-3 microM) but were blocked by solutions containing low Ca2+ (0.2 mM) and Cd2+ (0.5 mM), suggesting they were Ca(2+)-dependent. 3. Type I neurones had a significantly shorter membrane time constant (14.5 +/- 1.7 ms) than those of type II (21.6 +/- 1.7 ms) and type III neurones (33.8 +/- 4.4 ms). Input resistance and resting membrane potential did not differ significantly among the cell groups. 4. Current-voltage (I-V) relations were significantly different among the three cell types. Type I neurones had linear I-V relations to -120 mV, while type III neurones all showed marked anomalous rectification. I-V relations among type II neurones were more heterogeneous, although most (75%) had linear I-V curves to about -90 to -100 mV, inward rectification appearing at more negative potentials. 5. Type I neurones generated fast action potentials of relatively large amplitude (64.2 +/- 1.1 mV, threshold to peak) and long duration (1.1 +/- 0.1 ms, measured at half-amplitude); the longer duration was due to a shoulder on the falling phase of the spike. Type II neurones had large spikes (66.5 +/- 1.6 mV) of shorter duration (0.9 +/- 0.1 ms) with no shoulder. Type III neurones had relatively small spikes (56.1 +/- 2.2 mV) of short duration (0.8 +/- 0.1 ms) with no shoulder. 6. The three cell populations showed different patterns of repetitive firing in response to depolarizing current pulses. Type I neurones often generated spike trains with a delayed onset and little spike-frequency adaptation.(ABSTRACT TRUNCATED AT 400 WORDS)
机译:1.研究了大鼠下丘脑室旁核(PVN)区域的神经元,并在冠状切片制剂中进行了细胞内记录。三种类型的下丘脑神经元根据它们的膜特性和解剖位置进行区分。细胞内注射路西法黄或溴化乙锭以确定一些记录细胞的形态。 2.最独特的电生理特征是低阈值去极化电位,在I型神经元中完全不存在,在II型神经元中存在但可变,而在III型神经元中非常明显。 II型神经元通常表现出相对较小的低阈值去极化(26.5 +/- 2.2 mV),产生最多一到两个动作电位。另一方面,III型神经元产生较大的低阈值电位(40.3 +/- 2.8 mV),从而产生三到六个快速动作电位。 II型和III型神经元的低阈值电导失活是电压和时间依赖性的。低阈值电势在TTX(1-3 microM)中持续存在,但被包含低Ca2 +(0.2 mM)和Cd2 +(0.5 mM)的溶液阻止,表明它们是Ca(2+)依赖性的。 3. I型神经元的膜时间常数(14.5 +/- 1.7 ms)明显短于II型(21.6 +/- 1.7 ms)和III型神经元(33.8 +/- 4.4 ms)。在各组细胞之间,输入阻力和静息膜电位没有显着差异。 4.三种电池类型之间的电流-电压(I-V)关系显着不同。 I型神经元与-120 mV具有线性I-V关系,而III型神经元均显示出明显的异常矫正。 II型神经元之间的I-V关系更加不均匀,尽管大多数(75%)的线性I-V曲线约为-90至-100 mV,向内整流的负电位更高。 5. I型神经元产生的快速动作电位具有相对较大的振幅(64.2 +/- 1.1 mV,达到峰值的阈值)和较长的持续时间(1.1 +/- 0.1 ms,以半振幅测量);持续时间较长是由于峰值下降阶段的肩膀。 II型神经元具有较大的尖峰(66.5 +/- 1.6 mV),持续时间较短(0.9 +/- 0.1 ms),没有肩部。 III型神经元具有较短的持续时间(0.8 +/- 0.1 ms)相对较小的尖峰(56.1 +/- 2.2 mV),没有肩膀。 6.三种细胞群对去极化电流脉冲表现出不同的重复发射模式。 I型神经元通常会产生起效迟缓,峰频适应性差的峰序列(摘要以400字截短)

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    Tasker, J G; Dudek, F E;

  • 作者单位
  • 年度 1991
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  • 原文格式 PDF
  • 正文语种 en
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