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Phase dependent modulation of tremor amplitude in essential tremor through thalamic stimulation

机译:通过丘脑刺激对原发性震颤的震颤幅度进行相位依赖性调制

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摘要

High frequency deep brain stimulation of the thalamus can help ameliorate severe essential tremor. Here we explore how the efficacy, efficiency and selectivity of thalamic deep brain stimulation might be improved in this condition. We started from the hypothesis that the effects of electrical stimulation on essential tremor may be phase dependent, and that, in particular, there are tremor phases at which stimuli preferentially lead to a reduction in the amplitude of tremor. The latter could be exploited to improve deep brain stimulation, particularly if tremor suppression could be reinforced by cumulative effects. Accordingly, we stimulated 10 patients with essential tremor and thalamic electrodes, while recording tremor amplitude and phase. Stimulation near the postural tremor frequency entrained tremor. Tremor amplitude was also modulated depending on the phase at which stimulation pulses were delivered in the tremor cycle. Stimuli in one half of the tremor cycle reduced median tremor amplitude by ∼10%, while those in the opposite half of the tremor cycle increased tremor amplitude by a similar amount. At optimal phase alignment tremor suppression reached 27%. Moreover, tremor amplitude showed a non-linear increase in the degree of suppression with successive stimuli; tremor suppression was increased threefold if a stimulus was preceded by four stimuli with a similar phase relationship with respect to the tremor, suggesting cumulative, possibly plastic, effects. The present results pave the way for a stimulation system that tracks tremor phase to control when deep brain stimulation pulses are delivered to treat essential tremor. This would allow treatment effects to be maximized by focussing stimulation on the optimal phase for suppression and by ensuring that this is repeated over many cycles so as to harness cumulative effects. Such a system might potentially achieve tremor control with far less power demand and greater specificity than current high frequency stimulation approaches, and may lower the risk for tolerance and rebound.
机译:丘脑的高频深部脑刺激可以帮助缓解严重的原发性震颤。在这里,我们探讨了在这种情况下如何改善丘脑深部脑刺激的功效,效率和选择性。我们从这样的假设开始,即电刺激对原发性震颤的影响可能与相位有关,特别是在某些震颤阶段,刺激优先导致震颤幅度降低。可以利用后者来改善深部脑部刺激,特别是如果可以通过累积效应加强震颤抑制的话。因此,我们在记录震颤幅度和相位的同时,刺激了10例有必要的震颤和丘脑电极的患者。姿势性震颤频率附近有刺激性震颤。还根据震颤周期中传递刺激脉冲的相位来调制震颤幅度。震颤周期一半的刺激使中位震颤幅度降低约10%,而震颤周期另一半的刺激则使震颤幅度增加相似的量。在最佳相位对准下,震颤抑制达到27%。此外,震颤幅度显示出随着连续刺激的抑制程度呈非线性增加。如果在刺激之前加入四个与震颤具有相似相位关系的刺激,则震颤抑制作用会增加三倍,这表明存在累积的,可能是塑性的作用。本研究结果为跟踪震颤阶段以控制何时传递深部脑部刺激脉冲以治疗原发性震颤的刺激系统铺平了道路。通过将刺激集中于抑制的最佳阶段,并确保在许多周期中重复进行此过程以利用累积效应,可以使治疗效果最大化。与当前的高频刺激方法相比,这样的系统可能潜在地以更少的功率需求和更大的特异性实现震颤控制,并且可以降低耐受性和反弹的风险。

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