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Identifying bidirectional total and non-linear information flow in functional corticomuscular coupling during a dorsiflexion task: a pilot study

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机构: [1]Yanshan Univ, Inst Elect Engn, Qinhuangdao 066004, Hebei, Peoples R China [2]Hebei Univ, Key Lab Digital Med Engn Hebei Prov, Baoding 071002, Peoples R China [3]Hebei Univ, Affiliated Hosp, Dev Planning Off, Baoding 071002, Peoples R China
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关键词: Functional corticomuscular coupling Time-delayed maximal information coefficient Information flow Nonlinear coupling

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Background The key challenge to constructing functional corticomuscular coupling (FCMC) is to accurately identify the direction and strength of the information flow between scalp electroencephalography (EEG) and surface electromyography (SEMG). Traditional TE and TDMI methods have difficulty in identifying the information interaction for short time series as they tend to rely on long and stable data, so we propose a time-delayed maximal information coefficient (TDMIC) method. With this method, we aim to investigate the directional specificity of bidirectional total and nonlinear information flow on FCMC, and to explore the neural mechanisms underlying motor dysfunction in stroke patients. Methods We introduced a time-delayed parameter in the maximal information coefficient to capture the direction of information interaction between two time series. We employed the linear and non-linear system model based on short data to verify the validity of our algorithm. We then used the TDMIC method to study the characteristics of total and nonlinear information flow in FCMC during a dorsiflexion task for healthy controls and stroke patients. Results The simulation results showed that the TDMIC method can better detect the direction of information interaction compared with TE and TDMI methods. For healthy controls, the beta band (14-30 Hz) had higher information flow in FCMC than the gamma band (31-45 Hz). Furthermore, the beta-band total and nonlinear information flow in the descending direction (EEG to EMG) was significantly higher than that in the ascending direction (EMG to EEG), whereas in the gamma band the ascending direction had significantly higher information flow than the descending direction. Additionally, we found that the strong bidirectional information flow mainly acted on Cz, C3, CP3, P3 and CPz. Compared to controls, both the beta-and gamma-band bidirectional total and nonlinear information flows of the stroke group were significantly weaker. There is no significant difference in the direction of beta- and gamma-band information flow in stroke group. Conclusions The proposed method could effectively identify the information interaction between short time series. According to our experiment, the beta band mainly passes downward motor control information while the gamma band features upward sensory feedback information delivery. Our observation demonstrate that the center and contralateral sensorimotor cortex play a major role in lower limb motor control. The study further demonstrates that brain damage caused by stroke disrupts the bidirectional information interaction between cortex and effector muscles in the sensorimotor system, leading to motor dysfunction.

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出版当年[2022]版:
大类 | 2 区 工程技术
小类 | 1 区 康复医学 2 区 工程:生物医学 2 区 神经科学
最新[2025]版:
大类 | 1 区 医学
小类 | 1 区 康复医学 2 区 工程:生物医学 2 区 神经科学
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出版当年[2021]版:
Q1 REHABILITATION Q2 ENGINEERING, BIOMEDICAL Q2 NEUROSCIENCES
最新[2023]版:
Q1 ENGINEERING, BIOMEDICAL Q1 NEUROSCIENCES Q1 REHABILITATION

影响因子: 最新[2023版] 最新五年平均 出版当年[2021版] 出版当年五年平均 出版前一年[2020版] 出版后一年[2022版]

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第一作者机构: [1]Yanshan Univ, Inst Elect Engn, Qinhuangdao 066004, Hebei, Peoples R China [2]Hebei Univ, Key Lab Digital Med Engn Hebei Prov, Baoding 071002, Peoples R China
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通讯机构: [1]Yanshan Univ, Inst Elect Engn, Qinhuangdao 066004, Hebei, Peoples R China [2]Hebei Univ, Key Lab Digital Med Engn Hebei Prov, Baoding 071002, Peoples R China
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