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通过耦合广义线性模型表征针刺诱发的神经放电活动

Charactering Neural Spiking Activity Evoked by Acupuncture Through Coupling Generalized Linear Model.

作者信息

Qin Qing, Zhang Kaiyue, Che Yanqiu, Han Chunxiao, Qin Yingmei, Li Shanshan

机构信息

Tianjin Key Laboratory of Information Sensing & Intelligent Control, Tianjin University of Technology and Education, Tianjin 300222, China.

出版信息

Entropy (Basel). 2024 Dec 13;26(12):1088. doi: 10.3390/e26121088.

Abstract

Acupuncturing the ST36 acupoint can evoke a responding activity in the spinal dorsal root ganglia and generate spikes. In order to identify the responding mechanism of different acupuncture manipulations, in this paper the spike history of neurons is taken as the starting point and the coupling generalized linear model is adopted to encode the neuronal spiking activity evoked by different acupuncture manipulations. Then, maximum likelihood estimation is used to fit the model parameters and estimate the coupling parameters of stimulus, the self-coupling parameters of the neuron's own spike history and the cross-coupling parameters of other neurons' spike history. We use simulation data to test the estimation algorithm's effectiveness and analyze the main factors that evoke neuronal responding activity. Finally, we use the coupling generalized linear model to encode neuronal spiking activity evoked by two acupuncture manipulations, and estimate the coupling parameters of stimulus, the self-coupling parameters and the cross-coupling parameters. The results show that in acupuncture experiments, acupuncture stimulus is the inducing factor of neuronal spiking activity, and the cross-coupling of other neurons' spike history is the main factor of neuronal spiking activity. Additionally, the higher the amplitude of the neuronal spiking waveform, the greater the cross-coupling parameter. This lays a theoretical foundation for the scientific application of acupuncture therapy.

摘要

针刺足三里穴可诱发脊髓背根神经节的反应活动并产生动作电位。为了识别不同针刺手法的反应机制,本文以神经元的动作电位历史为出发点,采用耦合广义线性模型对不同针刺手法诱发的神经元放电活动进行编码。然后,使用最大似然估计来拟合模型参数,并估计刺激的耦合参数、神经元自身动作电位历史的自耦合参数以及其他神经元动作电位历史的交叉耦合参数。我们使用模拟数据来测试估计算法的有效性,并分析诱发神经元反应活动的主要因素。最后,我们使用耦合广义线性模型对两种针刺手法诱发的神经元放电活动进行编码,并估计刺激的耦合参数、自耦合参数和交叉耦合参数。结果表明,在针刺实验中,针刺刺激是神经元放电活动的诱发因素,其他神经元动作电位历史的交叉耦合是神经元放电活动的主要因素。此外,神经元放电波形的幅度越高,交叉耦合参数越大。这为针刺疗法的科学应用奠定了理论基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c2e0/11675705/958220edb2ac/entropy-26-01088-g001.jpg

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