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电极位置对视网膜双极细胞钠峰诱发的影响。

Impact of Electrode Position on the Elicitation of Sodium Spikes in Retinal Bipolar Cells.

机构信息

Institute of Analysis and Scientific Computing, Vienna University of Technology, Vienna, Austria.

出版信息

Sci Rep. 2017 Dec 14;7(1):17590. doi: 10.1038/s41598-017-17603-8.

Abstract

Bipolar cells of the magnocellular pathway in the primate retina can generate action potentials because they have an axonal segment with high sodium channel density, comparable to the sodium channel band in retinal ganglion cells or pyramidal cells. The similarity between the non-human primate and the human retina is of interest for the research on retinal implants for the blind, and especially, the conditions to elicit sodium spikes in bipolar cells using extracellular stimulation. A comparison of excitation characteristics of three model neurons, a bipolar cell, a retinal ganglion cell, and a cortical pyramidal cell, demonstrates the similarities and differences regarding stimulation with microelectrodes. Moving a microelectrode parallel to the axon of a neuron commonly allows to generate spikes for every position - and this rule holds both for cathodic and anodic pulses. However, for the simulated bipolar cell anodic pulses cannot generate sodium spikes directly. Further, there is only a small region for electrode placing where extracellular cathodic stimulation causes direct spike initiation in the sodium channel band. For all other positions, a sodium spike can only be generated by antidromic current flow originating from strongly depolarized terminals.

摘要

灵长类动物视网膜中的大细胞通路中的双极细胞可以产生动作电位,因为它们具有轴突段,其中钠离子通道密度很高,与视网膜神经节细胞或锥体细胞中的钠离子通道带相当。非灵长类动物和人类视网膜之间的相似性是研究盲人视网膜植入物的基础,特别是使用细胞外刺激来引发双极细胞中钠离子峰的条件。对三种模型神经元(双极细胞、视网膜神经节细胞和皮质锥体细胞)的兴奋特性进行比较,表明了使用微电极进行刺激时的相似性和差异。将微电极平行于神经元的轴突移动通常可以为每个位置产生尖峰——这一规则既适用于阴极脉冲也适用于阳极脉冲。然而,对于模拟的双极细胞,阳极脉冲不能直接产生钠离子峰。此外,只有一小部分电极放置区域可以在外源性阴极刺激下直接在钠离子通道带中引发尖峰。对于所有其他位置,只有当来自强烈去极化末端的逆行电流产生时,才能产生钠离子峰。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8288/5730545/2038cce1584e/41598_2017_17603_Fig1_HTML.jpg

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