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脉冲定时对皮层及丘脑底核深部脑刺激诱发电位的影响。

The impact of pulse timing on cortical and subthalamic nucleus deep brain stimulation evoked potentials.

作者信息

Campbell Brett A, Favi Bocca Leonardo, Escobar Sanabria David, Almeida Julio, Rammo Richard, Nagel Sean J, Machado Andre G, Baker Kenneth B

机构信息

Department of Biomedical Engineering, Case Western Reserve University, Cleveland, OH, United States.

Department of Neurosciences, Lerner Research Institute, Cleveland Clinic, Cleveland, OH, United States.

出版信息

Front Hum Neurosci. 2022 Sep 20;16:1009223. doi: 10.3389/fnhum.2022.1009223. eCollection 2022.

Abstract

The impact of pulse timing is an important factor in our understanding of how to effectively modulate the basal ganglia thalamocortical (BGTC) circuit. Single pulse low-frequency DBS-evoked potentials generated through electrical stimulation of the subthalamic nucleus (STN) provide insight into circuit activation, but how the long-latency components change as a function of pulse timing is not well-understood. We investigated how timing between stimulation pulses delivered in the STN region influence the neural activity in the STN and cortex. DBS leads implanted in the STN of five patients with Parkinson's disease were temporarily externalized, allowing for the delivery of paired pulses with inter-pulse intervals (IPIs) ranging from 0.2 to 10 ms. Neural activation was measured through local field potential (LFP) recordings from the DBS lead and scalp EEG. DBS-evoked potentials were computed using contacts positioned in dorsolateral STN as determined through co-registered post-operative imaging. We quantified the degree to which distinct IPIs influenced the amplitude of evoked responses across frequencies and time using the wavelet transform and power spectral density curves. The beta frequency content of the DBS evoked responses in the STN and scalp EEG increased as a function of pulse-interval timing. Pulse intervals <1.0 ms apart were associated with minimal to no change in the evoked response. IPIs from 1.5 to 3.0 ms yielded a significant increase in the evoked response, while those >4 ms produced modest, but non-significant growth. Beta frequency activity in the scalp EEG and STN LFP response was maximal when IPIs were between 1.5 and 4.0 ms. These results demonstrate that long-latency components of DBS-evoked responses are pre-dominantly in the beta frequency range and that pulse interval timing impacts the level of BGTC circuit activation.

摘要

脉冲定时的影响是我们理解如何有效调节基底神经节丘脑皮质(BGTC)回路的一个重要因素。通过对丘脑底核(STN)进行电刺激产生的单脉冲低频深部脑刺激(DBS)诱发电位有助于深入了解回路激活情况,但长潜伏期成分如何随脉冲定时而变化尚未得到充分理解。我们研究了在STN区域施加的刺激脉冲之间的定时如何影响STN和皮质中的神经活动。将植入五名帕金森病患者STN的DBS电极暂时外置,以便能够施加脉冲间隔(IPI)范围为0.2至10毫秒的成对脉冲。通过DBS电极的局部场电位(LFP)记录和头皮脑电图测量神经激活。使用通过术后共注册成像确定的位于背外侧STN的触点计算DBS诱发电位。我们使用小波变换和功率谱密度曲线量化了不同IPI对跨频率和时间的诱发反应幅度的影响程度。STN和头皮脑电图中DBS诱发反应的β频率成分随脉冲间隔定时而增加。间隔<1.0毫秒的脉冲对诱发反应的影响最小甚至没有变化。1.5至3.0毫秒的IPI使诱发反应显著增加,而>4毫秒的IPI则产生适度但不显著的增长。当IPI在1.5至4.0毫秒之间时,头皮脑电图和STN LFP反应中的β频率活动最大。这些结果表明,DBS诱发反应的长潜伏期成分主要在β频率范围内,并且脉冲间隔定时会影响BGTC回路的激活水平。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c62f/9532054/ae6fc19fab0b/fnhum-16-1009223-g0001.jpg

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