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Rational design of transcranial current stimulation (TCS) through mechanistic insights into cortical network dynamics

机译:通过对皮层网络动力学的机械洞察力来合理设计经颅电流刺激(TCS)

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摘要

Transcranial current stimulation (TCS) is a promising method of non-invasive brain stimulation to modulate cortical network dynamics. Preliminary studies have demonstrated the ability of TCS to enhance cognition and reduce symptoms in both neurological and psychiatric illnesses. Despite the encouraging results of these studies, the mechanisms by which TCS and endogenous network dynamics interact remain poorly understood. Here, we propose that the development of the next generation of TCS paradigms with increased efficacy requires such mechanistic understanding of how weak electric fields (EFs) imposed by TCS interact with the nonlinear dynamics of large-scale cortical networks. We highlight key recent advances in the study of the interaction dynamics between TCS and cortical network activity. In particular, we illustrate an interdisciplinary approach that bridges neurobiology and electrical engineering. We discuss the use of (1) hybrid biological-electronic experimental approaches to disentangle feedback interactions; (2) large-scale computer simulations for the study of weak global perturbations imposed by TCS; and (3) optogenetic manipulations informed by dynamic systems theory to probe network dynamics. Together, we here provide the foundation for the use of rational design for the development of the next generation of TCS neurotherapeutics.
机译:经颅电流刺激(TCS)是一种有前途的无创性脑刺激方法,可调节皮层网络动态。初步研究表明,TCS在神经和精神疾病中均具有增强认知能力和减轻症状的能力。尽管这些研究取得了令人鼓舞的结果,但对TCS和内源网络动力学相互作用的机制仍知之甚少。在这里,我们建议开发具有更高功效的下一代TCS范式,需要对TCS施加的弱电场(EFs)如何与大规模皮质网络的非线性动力学相互作用的这种机械理解。我们重点介绍了TCS与皮质网络活动之间的相互作用动力学研究的最新进展。特别是,我们说明了一种跨学科的方法,将神经生物学和电气工程联系起来。我们讨论使用(1)混合生物电子实验方法来解开反馈相互作用; (2)大型计算机模拟,用于研究TCS造成的微弱全球扰动; (3)动态系统理论指导的光遗传学操作,以探究网络动力学。我们在一起,在这里为使用合理设计开发下一代TCS神经疗法提供了基础。

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