Functional interaction of electrical coupling and H-current and its putative impact on inhibitory transmission.

IF 2.9 3区 医学 Q2 NEUROSCIENCES
Federico F Trigo, Pepe Alcamí, Sebastian Curti
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引用次数: 0

Abstract

The flow of information within neural circuits depends on the communication between neurons, primarily taking place at chemical and electrical synapses. The coexistence of these two modalities of synaptic transmission and their dynamical interaction with voltage-gated membrane conductances enables a rich repertoire of complex functional operations. One such operation, coincidence detection, allows electrically coupled neurons to respond more strongly to simultaneous synaptic inputs than to temporally dispersed ones. Using the mesencephalic trigeminal (MesV) nucleus-a structure composed of large, somatically coupled neurons-as an experimental model, we first demonstrate that electrical coupling strength in the hyperpolarized voltage range is highly time-dependent due to the involvement of the IH current. We then show how this property influences the coincidence detection of hyperpolarizing signals. Specifically, simultaneous hyperpolarizing inputs induce larger membrane potential changes, resulting in stronger IH current activation. This, in turn, shortens the temporal window for coincidence detection. We propose that this phenomenon may be crucial for networks dynamics in circuits of electrically coupled neurons that receive inhibitory synaptic inputs and express the IH current. In particular, molecular layer interneurons (MLIs) of the cerebellar cortex provide an ideal model for studying coincidence detection of inhibitory synaptic inputs, and how this operation is shaped by the voltage-dependent conductances like the IH current, potentially impacting on motor coordination and learning.

神经回路中的信息流取决于神经元之间的交流,主要发生在化学和电突触上。这两种突触传递方式的共存以及它们与电压门控膜传导的动态交互作用,使得复杂的功能操作得以丰富呈现。其中一种操作是巧合检测,它使电耦合神经元对同步突触输入的反应比对时间上分散的突触输入的反应更强烈。我们以间脑三叉神经(MesV)核--一个由大型体耦合神经元组成的结构--为实验模型,首先证明了由于 IH 电流的参与,超极化电压范围内的电耦合强度具有高度的时间依赖性。然后,我们展示了这一特性如何影响超极化信号的巧合检测。具体来说,同时输入的超极化信号会引起更大的膜电位变化,从而导致更强的 IH 电流激活。这反过来又缩短了巧合检测的时间窗口。我们认为,这种现象可能对接受抑制性突触输入并表达 IH 电流的电耦合神经元回路的网络动力学至关重要。特别是,小脑皮层的分子层中间神经元(MLIs)为研究抑制性突触输入的巧合检测提供了一个理想的模型,也为研究这种操作是如何被电压依赖性电导(如 IH 电流)塑造,从而对运动协调和学习产生潜在影响提供了一个理想的模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Neuroscience
Neuroscience 医学-神经科学
CiteScore
6.20
自引率
0.00%
发文量
394
审稿时长
52 days
期刊介绍: Neuroscience publishes papers describing the results of original research on any aspect of the scientific study of the nervous system. Any paper, however short, will be considered for publication provided that it reports significant, new and carefully confirmed findings with full experimental details.
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