Suppr超能文献

新皮层解离培养物中的单神经元放电特性和网络活动。

Single-neuron discharge properties and network activity in dissociated cultures of neocortex.

作者信息

Giugliano M, Darbon P, Arsiero M, Lüscher H-R, Streit J

机构信息

Institute of Physiology, University of Bern, Bühlplatz 5, 3012 Bern, Switzerland.

出版信息

J Neurophysiol. 2004 Aug;92(2):977-96. doi: 10.1152/jn.00067.2004. Epub 2004 Mar 24.

Abstract

Cultures of neurons from rat neocortex exhibit spontaneous, temporally patterned, network activity. Such a distributed activity in vitro constitutes a possible framework for combining theoretical and experimental approaches, linking the single-neuron discharge properties to network phenomena. In this work, we addressed the issue of closing the loop, from the identification of the single-cell discharge properties to the prediction of collective network phenomena. Thus, we compared these predictions with the spontaneously emerging network activity in vitro, detected by substrate arrays of microelectrodes. Therefore, we characterized the single-cell discharge properties to Gauss-distributed noisy currents, under pharmacological blockade of the synaptic transmission. Such stochastic currents emulate a realistic input from the network. The mean (m) and variance (s(2)) of the injected current were varied independently, reminiscent of the extended mean-field description of a variety of possible presynaptic network organizations and mean activity levels, and the neuronal response was evaluated in terms of the steady-state mean firing rate (f). Experimental current-to-spike-rate responses f(m, s(2)) were similar to those of neurons in brain slices, and could be quantitatively described by leaky integrate-and-fire (IF) point neurons. The identified model parameters were then used in numerical simulations of a network of IF neurons. Such a network reproduced a collective activity, matching the spontaneous irregular population bursting, observed in cultured networks. We finally interpret such a collective activity and its link with model details by the mean-field theory. We conclude that the IF model is an adequate minimal description of synaptic integration and neuronal excitability, when collective network activities are considered in vitro.

摘要

来自大鼠新皮层的神经元培养物表现出自发的、具有时间模式的网络活动。这种体外的分布式活动构成了一个将理论方法与实验方法相结合的可能框架,将单个神经元的放电特性与网络现象联系起来。在这项工作中,我们解决了从识别单细胞放电特性到预测集体网络现象的闭环问题。因此,我们将这些预测与通过微电极底物阵列检测到的体外自发出现的网络活动进行了比较。为此,我们在突触传递的药理学阻断下,将单细胞放电特性表征为高斯分布的噪声电流。这种随机电流模拟了来自网络的实际输入。注入电流的均值(m)和方差(s(2))被独立改变,这让人联想到对各种可能的突触前网络组织和平均活动水平的扩展平均场描述,并根据稳态平均放电率(f)评估神经元反应。实验性的电流到放电率反应f(m, s(2))与脑片中的神经元相似,并且可以用漏电积分发放(IF)点神经元进行定量描述。然后,将确定的模型参数用于IF神经元网络的数值模拟。这样的网络再现了一种集体活动,与在培养网络中观察到的自发不规则群体爆发相匹配。我们最终通过平均场理论解释了这种集体活动及其与模型细节的联系。我们得出结论,当在体外考虑集体网络活动时,IF模型是对突触整合和神经元兴奋性的充分最小描述。

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