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豚鼠舌下前置核神经元在体外的振荡和内在膜特性

Oscillatory and intrinsic membrane properties of guinea pig nucleus prepositus hypoglossi neurons in vitro.

作者信息

Idoux Erwin, Serafin Mauro, Fort Patrice, Vidal Pierre-Paul, Beraneck Mathieu, Vibert Nicolas, Mühlethaler Michel, Moore L E

机构信息

Laboratoire de Neurobiologie des Réseaux Sensorimoteurs, Centre National de la Recherche Scientifique (CNRS)-Université René Descartes (Paris 5) Unité Mixte de Recherche (UMR) 7060, Paris, France.

出版信息

J Neurophysiol. 2006 Jul;96(1):175-96. doi: 10.1152/jn.01355.2005. Epub 2006 Apr 5.

Abstract

Numerous models of the oculomotor neuronal integrator located in the prepositus hypoglossi nucleus (PHN) involve both highly tuned recurrent networks and intrinsic neuronal properties; however, there is little experimental evidence for the relative role of these two mechanisms. The experiments reported here show that all PHN neurons (PHNn) show marked phasic behavior, which is highly oscillatory in approximately 25% of the population. The behavior of this subset of PHNn, referred to as type D PHNn, is clearly different from that of the medial vestibular nucleus neurons, which transmit the bulk of head velocity-related sensory vestibular inputs without integrating them. We have investigated the firing and biophysical properties of PHNn and developed data-based realistic neuronal models to quantitatively illustrate that their active conductances can produce the oscillatory behavior. Although some individual type D PHNn are able to show some features of mathematical integration, the lack of robustness of this behavior strongly suggests that additional network interactions, likely involving all types of PHNn, are essential for the neuronal integrator. Furthermore, the relationship between the impulse activity and membrane potential of type D PHNn is highly nonlinear and frequency-dependent, even for relatively small-amplitude responses. These results suggest that some of the synaptic input to type D PHNn is likely to evoke oscillatory responses that will be nonlinearly amplified as the spike discharge rate increases. It would appear that the PHNn have specific intrinsic properties that, in conjunction with network interconnections, enhance the persistent neural activity needed for their function.

摘要

位于舌下前置核(PHN)的动眼神经神经元积分器的众多模型涉及高度调谐的递归网络和内在神经元特性;然而,关于这两种机制的相对作用几乎没有实验证据。本文报道的实验表明,所有PHN神经元(PHNn)都表现出明显的相位行为,在大约25%的群体中这种行为具有高度振荡性。这一亚组的PHNn(称为D型PHNn)的行为明显不同于内侧前庭核神经元,内侧前庭核神经元传递大部分与头部速度相关的感觉前庭输入但不进行积分。我们研究了PHNn的放电和生物物理特性,并开发了基于数据的真实神经元模型,以定量说明它们的主动电导可以产生振荡行为。虽然一些单个的D型PHNn能够表现出数学积分的一些特征,但这种行为缺乏稳健性强烈表明,可能涉及所有类型PHNn的额外网络相互作用对于神经元积分器至关重要。此外,即使对于相对小幅度的反应,D型PHNn的冲动活动与膜电位之间的关系也是高度非线性且频率依赖性的。这些结果表明,一些输入到D型PHNn的突触很可能诱发振荡反应,随着动作电位发放率的增加,这些反应将被非线性放大。看来PHNn具有特定的内在特性,这些特性与网络互连相结合,增强了其功能所需的持续神经活动。

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