诱导P301L tau突变后前馈神经网络结构组织和功能连通性的进化改变。

IF 2.7 4区 医学 Q3 NEUROSCIENCES
Janelle S. Weir, Katrine Sjaastad Hanssen, Nicolai Winter-Hjelm, Axel Sandvig, Ioanna Sandvig
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引用次数: 0

摘要

在复杂的神经网络中,相互的结构-功能关系是健康和病理行为的基础。因此,理解神经病理学和网络功能障碍需要对结构和功能网络重构之间复杂的相互作用进行彻底的研究,以响应扰动。这种适应通常很难在体内进行研究。例如,突触连通性、传递和从健康状态到病理状态的电生理转变中细微的、不断变化的变化,例如可能与不断发展的神经退行性疾病(如阿尔茨海默氏症)相关的变化,很难在大脑中进行研究。工程体外神经网络是强大的模型,可以在生理和病理条件下在微观和中尺度上选择性地靶向、操纵和监测动态神经网络行为。在这项研究中,我们设计了前馈皮质神经网络,使用具有可控连接的双节点微流体装置与微电极阵列(mmea)接口。我们将P301L突变的tau蛋白诱导到这些网络的突触前节点,并在三周内监测网络动态。诱导的扰动导致结构组织的改变和广泛的轴突缩回开始于受扰动的节点。受干扰的神经网络还表现出结内活动的功能变化,表现为放电率和爆发活动的总体下降,随着时间的推移,同步性逐渐增加,突触前和突触后节点之间的节间信号传播减少。这些结果为微观和中尺度的动态结构和功能重构提供了见解,并说明了工程网络作为网络功能和功能障碍模型的效用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Evolving alterations of structural organization and functional connectivity in feedforward neural networks after induced P301L tau mutation

Evolving alterations of structural organization and functional connectivity in feedforward neural networks after induced P301L tau mutation

Reciprocal structure–function relationships underlie both healthy and pathological behaviours in complex neural networks. Thus, understanding neuropathology and network dysfunction requires a thorough investigation of the complex interactions between structural and functional network reconfigurations in response to perturbation. Such adaptations are often difficult to study in vivo. For example, subtle, evolving changes in synaptic connectivity, transmission and the electrophysiological shift from healthy to pathological states, for example alterations that may be associated with evolving neurodegenerative disease, such as Alzheimer's, are difficult to study in the brain. Engineered in vitro neural networks are powerful models that enable selective targeting, manipulation and monitoring of dynamic neural network behaviour at the micro- and mesoscale in physiological and pathological conditions. In this study, we engineered feedforward cortical neural networks using two-nodal microfluidic devices with controllable connectivity interfaced with microelectrode arrays (mMEAs). We induced P301L mutated tau protein to the presynaptic node of these networks and monitored network dynamics over three weeks. Induced perturbation resulted in altered structural organization and extensive axonal retraction starting in the perturbed node. Perturbed networks also exhibited functional changes in intranodal activity, which manifested as an overall decline in both firing rate and bursting activity, with a progressive increase in synchrony over time and a decrease in internodal signal propagation between pre- and post-synaptic nodes. These results provide insights into dynamic structural and functional reconfigurations at the micro- and mesoscale as a result of evolving pathology and illustrate the utility of engineered networks as models of network function and dysfunction.

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来源期刊
European Journal of Neuroscience
European Journal of Neuroscience 医学-神经科学
CiteScore
7.10
自引率
5.90%
发文量
305
审稿时长
3.5 months
期刊介绍: EJN is the journal of FENS and supports the international neuroscientific community by publishing original high quality research articles and reviews in all fields of neuroscience. In addition, to engage with issues that are of interest to the science community, we also publish Editorials, Meetings Reports and Neuro-Opinions on topics that are of current interest in the fields of neuroscience research and training in science. We have recently established a series of ‘Profiles of Women in Neuroscience’. Our goal is to provide a vehicle for publications that further the understanding of the structure and function of the nervous system in both health and disease and to provide a vehicle to engage the neuroscience community. As the official journal of FENS, profits from the journal are re-invested in the neuroscientific community through the activities of FENS.
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