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嗅觉受体神经元之间的抑制作用。

Inhibition among olfactory receptor neurons.

作者信息

Van der Goes van Naters Wynand

机构信息

School of Biosciences, Cardiff University Cardiff, UK.

出版信息

Front Hum Neurosci. 2013 Oct 23;7:690. doi: 10.3389/fnhum.2013.00690.

Abstract

Often assumed to be epiphenomena of a cell's activity, extracellular currents and resulting potential changes are increasingly recognized to influence the function of other cells in the vicinity. Experimental evidence shows that even small electric fields can modulate spike timing in neurons. Moreover, when neurons are brought close together experimentally or in pathological conditions, activity in one neuron can excite its neighbors. Inhibitory ephaptic mechanisms, however, may depend on more specialized coupling among cells. Recent studies in the Drosophila olfactory system have shown that excitation of a sensory neuron can inhibit its neighbor, and it was speculated that this interaction was ephaptic. Here we give an overview of ephaptic interactions that effect changes in spike timing, excitation or inhibition in diverse systems with potential relevance to human neuroscience. We examine the mechanism of the inhibitory interaction in the Drosophila system and that of the well-studied ephaptic inhibition of the Mauthner cell in more detail. We note that both current towards and current away from the local extracellular environment of a neuron can inhibit it, but the mechanism depends on the specific architecture of each system.

摘要

细胞外电流及由此产生的电位变化通常被认为是细胞活动的附带现象,但它们对附近其他细胞功能的影响越来越受到认可。实验证据表明,即使是很小的电场也能调节神经元的放电时间。此外,当神经元在实验中或病理条件下彼此靠近时,一个神经元的活动可以激发其相邻神经元。然而,抑制性电突触机制可能依赖于细胞之间更特殊的耦合。最近在果蝇嗅觉系统中的研究表明,感觉神经元的兴奋可以抑制其相邻神经元,据推测这种相互作用是电突触的。在这里,我们概述了电突触相互作用,这种相互作用会影响不同系统中放电时间的变化、兴奋或抑制,这些系统可能与人类神经科学相关。我们更详细地研究了果蝇系统中抑制性相互作用的机制以及对莫氏细胞进行了充分研究的电突触抑制机制。我们注意到,流向神经元局部细胞外环境的电流和远离该环境的电流都可以抑制神经元,但具体机制取决于每个系统的特定结构。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4967/3805947/c36a214845cb/fnhum-07-00690-g0001.jpg

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