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渗透压对海马切片中CA1神经元群体的影响,特别涉及葡萄糖。

Osmotic effects on the CA1 neuronal population in hippocampal slices with special reference to glucose.

作者信息

Ballyk B A, Quackenbush S J, Andrew R D

机构信息

Department of Anatomy, Queen's University, Kingston, Ontario, Canada.

出版信息

J Neurophysiol. 1991 May;65(5):1055-66. doi: 10.1152/jn.1991.65.5.1055.

Abstract
  1. Lowered osmolality promotes epileptiform activity both clinically and in the hippocampal slice preparation, but it is unclear how neurons are excited. We studied the effects of altered osmolality on the electrophysiological properties of CA1 pyramidal cells in hippocampal slices by the use of field and intracellular recordings. The excitability of these neurons under various osmotic conditions was gauged by population spike (PS) amplitude, single cell properties, and evoked synaptic input. 2. The orthodromic PS recorded in stratum pyramidale and the field excitatory postsynaptic potential (EPSP) in stratum radiatum were inversely proportional in amplitude to the artificial cerebrospinal fluid (ACSF) osmolality over a range of +/- 80 milliosmoles/kgH2O (mosM). The effect was osmotic because changes occurred within the time frame expected for cellular expansion or shrinkage and because permeable substances such as dimethyl sulfoxide or glycerol were without effect. Dilutional changes in ACSF constituents were experimentally ruled out as promoting excitability. 3. To test whether the field data resulted from a change in single-cell excitability, CA1 cells were intracellularly recorded during exposure to +/- 40 mosM ACSF over 15 min. There was no consistent effect upon CA1 resting potential, cell input resistance, or action potential threshold. 4. Osmotic alteration of orthodromic and antidromic field potentials might involve a change in axonal excitability. However, the evoked afferent volley recorded in CA1 stratum pyramidale or radiatum, which represents the compound action potential (CAP) generated in presynaptic axons, remained osmotically unresponsive with regard to amplitude, duration, or latency. This was also characteristic of CAPs evoked in isolated sciatic and vagus nerve preparations exposed to +/- 80 mosM. Therefore axonal excitability and associated extracellular current flow generated periaxonally are not significantly affected by osmotic shifts. 5. The osmotic effect on field potential amplitudes appeared to be independent of synaptic transmission because the inverse relationship with osmolality held for the antidromically evoked PS. Moreover, as recorded with respect to ground, the intracellular EPSP-inhibitory postsynaptic potential (IPSP) sequence (evoked from CA3 stratum radiatum) was not altered by osmolality. 6. The PS could occasionally be recorded intracellularly as a brief negativity interrupting the evoked EPSP. In hyposmotic ACSF, the amplitude increased and action potentials arose from the trough of the negativity as expected for a field effect. This is presumably the result of enhanced intracellular channeling of current caused by the increased extracellular resistance that accompanies cellular swelling.(ABSTRACT TRUNCATED AT 400 WORDS)
摘要
  1. 低渗状态在临床和海马脑片标本中均会促进癫痫样活动,但尚不清楚神经元是如何被兴奋的。我们通过场电位和细胞内记录,研究了渗透压改变对海马脑片中CA1锥体神经元电生理特性的影响。这些神经元在不同渗透条件下的兴奋性通过群体峰电位(PS)幅度、单细胞特性和诱发的突触输入来衡量。2. 在±80毫渗摩尔/千克水(mosM)的范围内,在锥体层记录的顺向PS和在辐射层记录的场兴奋性突触后电位(EPSP)的幅度与人工脑脊液(ACSF)渗透压呈反比。这种效应是渗透性的,因为变化发生在细胞预期的膨胀或收缩时间范围内,并且因为诸如二甲基亚砜或甘油等可渗透物质没有影响。实验排除了ACSF成分的稀释变化促进兴奋性的可能性。3. 为了测试场电位数据是否源于单细胞兴奋性的变化,在暴露于±40 mosM ACSF 15分钟期间对CA1细胞进行细胞内记录。对CA1静息电位、细胞输入电阻或动作电位阈值没有一致的影响。4. 顺向和逆向场电位的渗透压改变可能涉及轴突兴奋性的变化。然而,在CA1锥体层或辐射层记录的诱发传入冲动,代表突触前轴突产生的复合动作电位(CAP),在幅度、持续时间或潜伏期方面对渗透压无反应。这也是暴露于±80 mosM的离体坐骨神经和迷走神经标本中诱发的CAP的特征。因此,轴突兴奋性和轴突周围产生的相关细胞外电流流动不受渗透压变化的显著影响。5. 对场电位幅度的渗透压效应似乎与突触传递无关,因为与渗透压的反比关系适用于逆向诱发的PS。此外,相对于地记录时,细胞内EPSP - 抑制性突触后电位(IPSP)序列(从CA3辐射层诱发)不受渗透压的改变。6. PS偶尔可以在细胞内记录为中断诱发EPSP的短暂负电位。在低渗ACSF中,幅度增加,动作电位从负电位的波谷产生,这是场效应所预期的。这可能是由于细胞肿胀伴随的细胞外电阻增加导致细胞内电流传导增强的结果。(摘要截断于400字)

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