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Deep Brain Stimulation Frequency—A Divining Rod for New and Novel Concepts of Nervous System Function and Therapy

机译:深度脑部刺激频率—神经系统功能和治疗新概念的分隔棒

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The efficacy of Deep Brain Stimulation (DBS) for an expanding array of neurological and psychiatric disorders demonstrates directly that DBS affects the basic electroneurophysiological mechanisms of the brain. The increasing array of active electrode configurations, stimulation currents, pulse widths, frequencies, and pulse patterns provides valuable tools to probe electroneurophysiological mechanisms. The extension of basic electroneurophysiological and anatomical concepts using sophisticated computational modeling and simulation has provided relatively straightforward explanations of all the DBS parameters except frequency. This article summarizes current thought about frequency and relevant observations. Current methodological and conceptual errors are critically examined in the hope that future work will not replicate these errors. One possible alternative theory is presented to provide a contrast to many current theories. DBS, conceptually, is a noisy discrete oscillator interacting with the basal ganglia–thalamic–cortical system of multiple re-entrant, discrete oscillators. Implications for positive and negative resonance, stochastic resonance and coherence, noisy synchronization, and holographic memory (related to movement generation) are presented. The time course of DBS neuronal responses demonstrates evolution of the DBS response consistent with the dynamics of re-entrant mechanisms. Finally, computational modeling demonstrates identical dynamics as seen by neuronal activities recorded from human and nonhuman primates, illustrating the differences of discrete from continuous harmonic oscillators and the power of conceptualizing the nervous system as composed on interacting discrete nonlinear oscillators.
机译:深层脑刺激(DBS)对不断扩大的神经系统疾病和精神疾病的功效直接证明了DBS影响着大脑的基本电子神经生理学机制。越来越多的有源电极配置,刺激电流,脉冲宽度,频率和脉冲模式提供了有价值的工具来探测电子神经生理机制。使用复杂的计算模型和仿真对基本的电子神经生理学和解剖学概念的扩展,为除频率以外的所有DBS参数提供了相对简单的解释。本文总结了有关频率和相关观测的当前思想。对当前的方法和概念错误进行了严格检查,以期将来的工作不会重复这些错误。提出了一种可能的替代理论,以与许多当前理论形成对比。从概念上讲,DBS是一个嘈杂的离散振荡器,与多个重入离散振荡器的基底神经节-丘脑-皮层系统相互作用。提出了对正负共振,随机共振和相干性,噪声同步和全息记忆(与运动产生有关)的影响。 DBS神经元反应的时间过程表明DBS反应的演变与折返机制的动力学一致。最后,计算模型证明了与人类和非人类灵长类动物所记录的神经元活动所见的动力学相同,从而说明了连续谐波振荡器的离散差异以及将相互作用的离散非线性振荡器组成的神经系统概念化的能力。

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