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Synchronization of neuron population subject to steady DC electric field induced by magnetic stimulation

机译:磁刺激诱导的稳定直流电场作用下的神经元群体的同步

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摘要

Electric fields, which are ubiquitous in the context of neurons, are induced either by external electromagnetic fields or by endogenous electric activities. Clinical evidences point out that magnetic stimulation can induce an electric field that modulates rhythmic activity of special brain tissue, which are associated with most brain functions, including normal and pathological physiological mechanisms. Recently, the studies about the relationship between clinical treatment for psychiatric disorders and magnetic stimulation have been investigated extensively. However, further development of these techniques is limited due to the lack of understanding of the underlying mechanisms supporting the interaction between the electric field induced by magnetic stimulus and brain tissue. In this paper, the effects of steady DC electric field induced by magnetic stimulation on the coherence of an interneuronal network are investigated. Different behaviors have been observed in the network with different topologies (i.e., random and small-world network, modular network). It is found that the coherence displays a peak or a plateau when the induced electric field varies between the parameter range we defined. The coherence of the neuronal systems depends extensively on the network structure and parameters. All these parameters play a key role in determining the range for the induced electric field to synchronize network activities. The presented results could have important implications for the scientific theoretical studies regarding the effects of magnetic stimulation on human brain.
机译:在神经元环境中普遍存在的电场是由外部电磁场或内源性电活动诱发的。临床证据指出,磁刺激可以感应电场,调节特殊脑组织的节律活动,这与大多数脑功能有关,包括正常和病理生理机制。近年来,关于精神疾病的临床治疗与磁刺激之间的关系的研究已被广泛研究。但是,由于缺乏对支持由磁刺激引起的电场和脑组织之间相互作用的潜在机制的理解,这些技术的进一步发展受到限制。本文研究了磁刺激引起的稳定直流电场对神经元网络相干性的影响。在具有不同拓扑的网络(即,随机世界和小世界网络,模块化网络)中观察到了不同的行为。发现当感应电场在我们定义的参数范围之间变化时,相干性显示出峰值或平稳状态。神经系统的连贯性在很大程度上取决于网络结构和参数。所有这些参数在确定感应电场范围以同步网络活动方面起着关键作用。提出的结果可能对有关磁刺激对人脑的影响的科学理论研究具有重要意义。

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