Suppr超能文献

穹窿下器神经元紧张性和爆发性放电行为的离子机制:一项实验与建模相结合的研究

Ionic mechanisms underlying tonic and burst firing behavior in subfornical organ neurons: a combined experimental and modeling study.

作者信息

Medlock Laura, Shute Lauren, Fry Mark, Standage Dominic, Ferguson Alastair V

机构信息

Center for Neuroscience Studies, Queen's University , Kingston, Ontario , Canada.

Department of Biological Sciences, University of Manitoba , Winnipeg, Manitoba , Canada.

出版信息

J Neurophysiol. 2018 Nov 1;120(5):2269-2281. doi: 10.1152/jn.00340.2018. Epub 2018 Aug 8.

Abstract

Subfornical organ (SFO) neurons exhibit heterogeneity in current expression and spiking behavior, where the two major spiking phenotypes appear as tonic and burst firing. Insight into the mechanisms behind this heterogeneity is critical for understanding how the SFO, a sensory circumventricular organ, integrates and selectively influences physiological function. To integrate efficient methods for studying this heterogeneity, we built a single-compartment, Hodgkin-Huxley-type model of an SFO neuron that is parameterized by SFO-specific in vitro patch-clamp data. The model accounts for the membrane potential distribution and spike train variability of both tonic and burst firing SFO neurons. Analysis of model dynamics confirms that a persistent Na and Ca currents are required for burst initiation and maintenance and suggests that a slow-activating K current may be responsible for burst termination in SFO neurons. Additionally, the model suggests that heterogeneity in current expression and subsequent influence on spike afterpotential underlie the behavioral differences between tonic and burst firing SFO neurons. Future use of this model in coordination with single neuron patch-clamp electrophysiology provides a platform for explaining and predicting the response of SFO neurons to various combinations of circulating signals, thus elucidating the mechanisms underlying physiological signal integration within the SFO. NEW & NOTEWORTHY Our understanding of how the subfornical organ (SFO) selectively influences autonomic nervous system function remains incomplete but theoretically results from the electrical responses of SFO neurons to physiologically important signals. We have built a computational model of SFO neurons, derived from and supported by experimental data, which explains how SFO neurons produce different electrical patterns. The model provides an efficient system to theoretically and experimentally explore how changes in the essential features of SFO neurons affect their electrical activity.

摘要

穹窿下器(SFO)神经元在电流表达和放电行为上表现出异质性,其中两种主要的放电表型表现为紧张性放电和爆发式放电。深入了解这种异质性背后的机制对于理解作为感觉室周器官的SFO如何整合并选择性地影响生理功能至关重要。为了整合研究这种异质性的有效方法,我们构建了一个单室霍奇金-赫胥黎型SFO神经元模型,该模型由SFO特异性的体外膜片钳数据进行参数化。该模型解释了紧张性放电和爆发式放电SFO神经元的膜电位分布和放电序列变异性。对模型动力学的分析证实,持续性钠电流和钙电流是爆发式放电起始和维持所必需的,并表明一种缓慢激活的钾电流可能负责SFO神经元的爆发式放电终止。此外,该模型表明电流表达的异质性以及随后对动作电位后电位的影响是紧张性放电和爆发式放电SFO神经元行为差异的基础。该模型未来与单神经元膜片钳电生理学协同使用,为解释和预测SFO神经元对各种循环信号组合的反应提供了一个平台,从而阐明SFO内生理信号整合的潜在机制。新内容与值得注意之处 我们对穹窿下器(SFO)如何选择性地影响自主神经系统功能的理解仍然不完整,但从理论上讲,这源于SFO神经元对生理重要信号的电反应。我们构建了一个基于实验数据并得到实验数据支持的SFO神经元计算模型,该模型解释了SFO神经元如何产生不同的电活动模式。该模型提供了一个有效的系统,用于从理论和实验上探索SFO神经元基本特征的变化如何影响其电活动。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验