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Random Neuronal Networks show homeostatic regulation of global activity while showing persistent changes in specific connectivity paths to theta burst stimuli

机译:随机神经元网络显示全局活动的稳态调节同时显示特定连接路径对theta爆发刺激的持续变化

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摘要

Learning in neuronal networks based on Hebbian principle has been shown to lead to destabilizing effects. Mechanisms have been identified that maintain homeostasis in such networks. However, the way in which these two opposing forces operate to support learning while maintaining stability is an active area of research. In this study, using neuronal networks grown on multi electrode arrays, we show that theta burst stimuli lead to persistent changes in functional connectivity along specific paths while the network maintains a global homeostasis. Simultaneous observations of spontaneous activity and stimulus evoked responses over several hours with theta burst training stimuli shows that global activity of the network quantified from spontaneous activity, which is disturbed due to theta burst stimuli is restored by homeostatic mechanisms while stimulus evoked changes in specific connectivity paths retain a memory trace of the training.
机译:在基于Hebbian原理的神经元网络中进行学习已显示出导致不稳定的作用。已经确定了在这种网络中维持体内平衡的机制。然而,这两个相反的力量如何在维持稳定性的同时支持学习的方式是研究的活跃领域。在这项研究中,使用在多电极阵列上生长的神经元网络,我们证明了theta爆发刺激导致沿特定路径的功能连通性持续变化,而网络维持了全局稳态。通过theta爆发训练刺激在数小时内对自发活动和刺激诱发反应的同时观察表明,自发活动量化了网络的整体活动,由于theta爆发刺激被稳态机制所恢复而受到干扰,而刺激诱发了特定连接路径的变化保留训练的记忆痕迹。

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