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动作电位在培养的胚胎背根神经节细胞中的传播。I. 细胞形态对传播特性的影响。

Action potential propagation through embryonic dorsal root ganglion cells in culture. I. Influence of the cell morphology on propagation properties.

作者信息

Lüscher C, Streit J, Quadroni R, Lüscher H R

机构信息

Institute of Physiology, University of Berne, Switzerland.

出版信息

J Neurophysiol. 1994 Aug;72(2):622-33. doi: 10.1152/jn.1994.72.2.622.

DOI:10.1152/jn.1994.72.2.622
PMID:7983524
Abstract
  1. In this and the companion paper the reliability of action potential (AP) propagation through dorsal root ganglion (DRG) cells was investigated. Experimental data were collected from DRG cells of embryonic rat slice cultures of the spinal cord. A field stimulation electrode was used to elicit an AP in the axon. The propagated AP or, in case of conduction block, its electronic residue (ER), was measured intracellularly in the soma of the DRG cell. 2. The morphological and electrophysiological data combined with published data from voltage-clamp studies were taken to implement a compartmental computer model, which allows a precise description of the propagating AP and the channel kinetics at any point along the axon. 3. The safety factor for conduction was found to be low. Thus failures of AP invasion of the DRG cell soma could occur at sites of impedance mismatch when a hyperpolarizing current was applied, a second stimulus felt into the relative refractory period of the first, or when the axon was repetitively stimulated. 4. The ERs of the failed APs had discrete amplitude levels, suggesting that the failures were always caused at the same site along the axon. These sites of low safety factor were found to be the branch point in the unipolar DRG cell and the entrance of the stem piece into the soma in both cell types, the bipolar as well as the unipolar. 5. A systematic comparison of bipolar and unipolar DRG cells showed that the AP conduction through the latter is more reliable. For large cell bodies, the unipolar configuration is needed for save conduction. 6. Conduction through unipolar DRG cells is faster than through bipolar cells because the electrical load of the soma is masked by the high-resistive stem piece. The length of this stem piece is correlated inversely to the delay caused at the branch point, as the electrical load of the soma is more efficiently masked by a long stem piece.
摘要
  1. 在本论文及配套论文中,研究了动作电位(AP)通过背根神经节(DRG)细胞传播的可靠性。实验数据取自胚胎大鼠脊髓切片培养物中的DRG细胞。使用场刺激电极在轴突中引发动作电位。在DRG细胞的胞体中通过细胞内记录测量传播的动作电位,或者在传导阻滞的情况下,测量其电遗迹(ER)。2. 结合形态学和电生理学数据以及电压钳研究的已发表数据,构建了一个房室计算机模型,该模型能够精确描述沿轴突任何一点的动作电位传播和通道动力学。3. 发现传导安全系数较低。因此,当施加超极化电流、第二个刺激落入第一个刺激的相对不应期或轴突受到重复刺激时,在阻抗不匹配的部位可能会发生动作电位侵入DRG细胞胞体失败的情况。4. 失败动作电位的电遗迹具有离散的幅度水平,表明失败总是在轴突上的同一位点引起的。这些安全系数低的位点是单极DRG细胞中的分支点以及双极和单极两种细胞类型中茎突进入胞体的入口。5. 对双极和单极DRG细胞的系统比较表明,动作电位通过后者的传导更可靠。对于大的细胞体,单极结构对于安全传导是必需的。6. 通过单极DRG细胞的传导比通过双极细胞的传导更快,因为胞体的电负载被高电阻的茎突所掩盖。该茎突的长度与分支点处引起延迟呈负相关,因为长茎突能更有效地掩盖胞体的电负载。

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