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STIMULUS: Noninvasive Dynamic Patterns of Neurostimulation Using Spatio-Temporal Interference

机译:刺激:使用时空干扰的无刺激性刺激无创动态模式

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Objective: This paper obtains strategies that can achieve spatially precise noninvasive deep brain stimulation using electrical currents. Methods: We provide the Spatio-Temporal Interference-based stiMULation focUsing Strategy (STIMULUS) that generates rich patterns of spatiotemporally interfering currents to stimulate precisely and deep inside the brain. To calibrate and compare the accuracy of stimulation using different techniques, we utilize computational Hodgkin-Huxley-type models for neurons and a model of current dispersion in the head. Results: In this computational model, STIMULUS dramatically outperforms the recently proposed Temporal Interference (TI) stimulation strategy in spatial precision. Our results also suggest that STIMULUS can attain steerable and multisite stimulation, which can be important in giving feedback in brain-machine interfaces. Finally, by examining more mammalian neuron types, we also observe that not every neuron exhibits temporal-interference stimulation. Conclusions: Computer simulations suggest that the proposed STIMULUS strategy has potential to achieve noninvasive electrical deep brain stimulation with high spatial precision and, further, has the flexibility of generating rich stimulation patterns. The fact that some neuron types do not exhibit TI stimulation suggests that caution is needed in evaluating conclusions of application of TI stimulation on large mammalian brains. Significance: A technique to reliably, noninvasively, and precisely stimulate deep inside the human brain could revolutionize human neuroscience and clinical treatments. We obtain the first computational demonstration of the recently proposed TI stimulation. Advancing on that, we propose a novel strategy that can perform stimulation with high precision and flexibility.
机译:目的:本文获得了使用电流实现空间精确的非侵入性深脑刺激的策略。方法:我们提供了一种基于时空干扰的刺激聚焦策略(刺激),其产生丰富的时空干扰电流,精确地刺激大脑内部。为了使用不同技术进行校准并比较刺激的准确性,我们利用了神经元的计算Hodgkin-Huxley型模型和头部的电流分散模型。结果:在该计算模型中,刺激在空间精度下最近提出的时间干扰(TI)刺激策略显着优于最近提出的时间干扰(TI)刺激策略。我们的结果还表明,刺激可以实现可控和多路刺激,这对于在脑机接口中提供反馈可能是重要的。最后,通过检查更多哺乳动物神经元类型,我们还观察到并非每个神经元表现出时间干扰刺激。结论:计算机仿真表明,拟议的刺激策略具有高空间精度实现非侵入性电气深脑刺激,进一步具有产生丰富的刺激模式的灵活性。一些神经元类型未表现出Ti刺激的事实表明,在评估Ti刺激对大型哺乳动物大脑的应用方面需要谨慎。意义:一种可靠,非侵入性和精确刺激人类大脑深度的技术可以彻底改变人类神经科学和临床治疗。我们获得最近提出的Ti刺激的第一个计算示范。推进,我们提出了一种新的策略,可以以高精度和灵活性进行刺激。

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