Local field potential-based brain-machine interface to inhibit epileptic seizures by spinal cord electrical stimulation.

IF 1.3 Q3 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING
Erika Maria Garcia Cerqueira, Raquel Emanuela de Medeiros, Fernando da Silva Fiorin, Mariane de Arújo E Silva, Ramón Hypolito Lima, André Felipe Oliveirade Azevedo Dantas, Abner Cardoso Rodrigues, Denis Delisle-Rodriguez
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引用次数: 0

Abstract

Objective.This study proposes a closed-loop brain-machine interface (BMI) based on spinal cord stimulation to inhibit epileptic seizures, applying a semi-supervised machine learning approach that learns from Local Field Potential (LFP) patterns acquired on the pre-ictal (preceding the seizure) condition.Approach.LFP epochs from the hippocampus and motor cortex are band-pass filtered from 1 to 13 Hz, to obtain the time-frequency representation using the continuous Wavelet transform, and successively calculate the phase lock values (PLV). As a novelty, theZ-score-based PLV normalization using both modifiedk-means and Davies-Bouldin's measure for clustering is proposed here. Consequently, a generic seizure's detector is calibrated for detecting seizures on the normalized PLV, and enables the spinal cord stimulation for periods of 30 s in a closed-loop, while the BMI system detects seizure events. To calibrate the proposed BMI, a dataset with LFP signals recorded on five Wistar rats during basal state and epileptic crisis was used. The epileptic crisis was induced by injecting pentylenetetrazol (PTZ). Afterwards, two experiments without/with our BMI were carried out, inducing epileptic crisis by PTZ in Wistar rats.Main results.Stronger seizure events of high LFP amplitudes and long time periods were observed in the rat, when the BMI system was not used. In contrast, short-time seizure events of relative low intensity were observed in the rat, using the proposed BMI. The proposed system detected on unseen data the synchronized seizure activity in the hippocampus and motor cortex, provided stimulation appropriately, and consequently decreased seizure symptoms.Significance.Low-frequency LFP signals from the hippocampus and motor cortex, and cord spinal stimulation can be used to develop accurate closed-loop BMIs for early epileptic seizures inhibition, as an alternative treatment.

基于局部场电位的脑机接口,通过脊髓电刺激抑制癫痫发作。
研究目的本研究提出了一种基于脊髓刺激的闭环脑机接口(BMI)来抑制癫痫发作,该接口采用半监督机器学习方法,从发作前(癫痫发作前)状态获得的局部场电位(LFP)模式中学习。来自海马体和运动皮层的局部场电位(LFP)历时经过 1 到 13 Hz 的带通滤波,利用连续小波变换获得时频表示,并连续计算锁相值(PLV)。作为一项创新,本文提出了基于 Z 分数的锁相值归一化方法,同时使用修正的 K 均值和 Davies-Bouldin 测量方法进行聚类。因此,在 BMI 系统检测癫痫发作事件的同时,对通用的癫痫发作检测器进行了校准,以检测归一化 PLV 上的癫痫发作,并使脊髓刺激在闭环中持续 30 秒。为了校准拟议的 BMI,我们使用了一个数据集,该数据集记录了五只 Wistar 大鼠在基础状态和癫痫危象时的 LFP 信号。癫痫危象是通过注射戊四唑(PTZ)诱发的。之后,我们又进行了两次实验,分别不使用或使用我们的 BMI,通过 PTZ 诱导 Wistar 大鼠出现癫痫危象。在不使用 BMI 系统的情况下,观察到大鼠出现了 LFP 振幅高、持续时间长的较强癫痫发作事件。与此相反,使用拟议的 BMI 系统时,在大鼠身上观察到了强度相对较低的短时间癫痫发作事件。拟议的系统从未曾见过的数据中检测到了海马和运动皮层的同步癫痫发作活动,并提供了适当的刺激,从而减少了癫痫发作症状。来自海马和运动皮层的低频 LFP 信号以及脊髓刺激可用于开发精确的闭环 BMI,以抑制早期癫痫发作,作为一种替代治疗方法。
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来源期刊
Biomedical Physics & Engineering Express
Biomedical Physics & Engineering Express RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING-
CiteScore
2.80
自引率
0.00%
发文量
153
期刊介绍: BPEX is an inclusive, international, multidisciplinary journal devoted to publishing new research on any application of physics and/or engineering in medicine and/or biology. Characterized by a broad geographical coverage and a fast-track peer-review process, relevant topics include all aspects of biophysics, medical physics and biomedical engineering. Papers that are almost entirely clinical or biological in their focus are not suitable. The journal has an emphasis on publishing interdisciplinary work and bringing research fields together, encompassing experimental, theoretical and computational work.
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