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温度对大鼠下丘脑神经元膜电位和输入电阻的影响。

Temperature effects on membrane potential and input resistance in rat hypothalamic neurones.

作者信息

Griffin J D, Boulant J A

机构信息

Department of Physiology, College of Medicine, Ohio State University, Columbus 43210, USA.

出版信息

J Physiol. 1995 Oct 15;488 ( Pt 2)(Pt 2):407-18. doi: 10.1113/jphysiol.1995.sp020975.

Abstract
  1. Whole-cell recordings were conducted in rat hypothalamic tissue slices to test the hypothesis that thermal changes in membrane potential contribute to neuronal thermosensitivity. Intracellular recordings of membrane potential and input resistance were made in eighty-two neurones, including twenty-four silent neurones and fifty-eight spontaneously firing neurones (22 warm-sensitive neurones and 36 temperature-insensitive neurones). Fifty-seven of the neurones were recorded in the preoptic and anterior hypothalamus. 2. Warm-sensitive neurones increased their firing rates during increases in temperature (1.07 +/- 0.06 impulses s-1 degree C-1), but their resting membrane potentials were not affected by temperature (0.06 +/- 0.06 mV degree C-1). Similarly, temperature did not affect the membrane potentials of temperature-insensitive neurones or silent neurones. 3. Silent neurones had significantly lower input resistances (256.9 +/- 20.0 M omega), compared with temperature-insensitive (362.6 +/- 57.2 M omega) and warm-sensitive neurones (392.2 +/- 50.0 M omega). Temperature had the same effect on all three types of neurones, such that resistance increased during cooling and decreased during warming. 4. If hyperpolarizing or depolarizing holding currents were applied to neurones, temperature caused changes in the membrane potentials. This spurious effect can be explained by thermally induced changes in the input resistance. 5. Measurements of electrode tip potentials indicated that artificial changes in membrane potential may also be recorded if grounding electrodes are not isolated from the changes in temperature. 6. These results suggest that physiological changes in resting membrane potentials do not determine neuronal warm sensitivity, and thermal changes in input resistance do not determine the primary differences between warm-sensitive and temperature-insensitive hypothalamic neurones.
摘要
  1. 在大鼠下丘脑组织切片上进行全细胞记录,以检验膜电位的热变化有助于神经元热敏感性这一假说。在82个神经元中进行了膜电位和输入电阻的细胞内记录,其中包括24个静息神经元和58个自发放电神经元(22个温敏神经元和36个温度不敏感神经元)。57个神经元记录于视前区和下丘脑前部。2. 温敏神经元在温度升高时放电频率增加(1.07±0.06次冲动·秒⁻¹·℃⁻¹),但其静息膜电位不受温度影响(0.06±0.06毫伏·℃⁻¹)。同样,温度也不影响温度不敏感神经元或静息神经元的膜电位。3. 与温度不敏感神经元(362.6±57.2兆欧)和温敏神经元(392.2±50.0兆欧)相比,静息神经元的输入电阻显著更低(256.9±20.0兆欧)。温度对这三种类型的神经元有相同的影响,即电阻在冷却时增加,在升温时降低。4. 如果对神经元施加超极化或去极化的钳制电流,温度会导致膜电位发生变化。这种虚假效应可以用输入电阻的热诱导变化来解释。5. 电极尖端电位的测量表明,如果接地电极未与温度变化隔离,也可能记录到膜电位的人为变化。6. 这些结果表明,静息膜电位的生理变化并不能决定神经元的温敏性,输入电阻的热变化也不能决定温敏和温度不敏感下丘脑神经元之间的主要差异。

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