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Neuroimage Clin. 2022;34:102971. doi: 10.1016/j.nicl.2022.102971. Epub 2022 Feb 25.
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Improved alpha-beta power reduction via combined electrical and ultrasonic stimulation in a parkinsonian cortex-basal ganglia-thalamus computational model.经联合电刺激和超声刺激的帕金森病皮层-基底节-丘脑计算模型的阿尔法-贝塔功率降低。
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A dynamical model for the basal ganglia-thalamo-cortical oscillatory activity and its implications in Parkinson's disease.一种用于基底神经节-丘脑-皮质振荡活动的动力学模型及其在帕金森病中的意义。
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High-Frequency Oscillations in the Pallidum: A Pathophysiological Biomarker in Parkinson's Disease?苍白球高频振荡:帕金森病的一种病理生理生物标志物?
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Pallidal Connectivity Profiling of Stimulation-Induced Dyskinesia in Parkinson's Disease.帕金森病刺激诱导运动障碍的苍白球连接特征分析。
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A computational model-based analysis of basal ganglia pathway changes in Parkinson's disease inferred from resting-state fMRI.基于计算模型的帕金森病静息态 fMRI 推断基底神经节通路变化分析。
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皮质-苍白球模型中β振荡的数学推导与机制分析

Mathematical derivation and mechanism analysis of beta oscillations in a cortex-pallidum model.

作者信息

Xu Minbo, Hu Bing, Wang Zhizhi, Zhu Luyao, Lin Jiahui, Wang Dingjiang

机构信息

Department of Applied Mathematics, Zhejiang University of Technology, Hangzhou, 310023 China.

出版信息

Cogn Neurodyn. 2024 Jun;18(3):1359-1378. doi: 10.1007/s11571-023-09951-1. Epub 2023 Mar 23.

DOI:10.1007/s11571-023-09951-1
PMID:38826645
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11143146/
Abstract

In this paper, we develop a new cortex-pallidum model to study the origin mechanism of Parkinson's oscillations in the cortex. In contrast to many previous models, the globus pallidus internal (GPi) and externa (GPe) both exert direct inhibitory feedback to the cortex. Using Hopf bifurcation analysis, two new critical conditions for oscillations, which can include the self-feedback projection of GPe, are obtained. In this paper, we find that the average discharge rate (ADR) is an important marker of oscillations, which can divide Hopf bifurcations into two types that can uniformly be used to explain the oscillation mechanism. Interestingly, the ADR of the cortex first increases and then decreases with increasing coupling weights that are projected to the GPe. Regarding the Hopf bifurcation critical conditions, the quantitative relationship between the inhibitory projection and excitatory projection to the GPe is monotonically increasing; in contrast, the relationship between different coupling weights in the cortex is monotonically decreasing. In general, the oscillation amplitude is the lowest near the bifurcation points and reaches the maximum value with the evolution of oscillations. The GPe is an effective target for deep brain stimulation to alleviate oscillations in the cortex.

摘要

在本文中,我们开发了一种新的皮质-苍白球模型来研究皮质中帕金森振荡的起源机制。与许多先前的模型不同,苍白球内侧部(GPi)和外侧部(GPe)都对皮质施加直接抑制性反馈。通过霍普夫分岔分析,获得了两个新的振荡临界条件,其中可以包括GPe的自反馈投射。在本文中,我们发现平均放电率(ADR)是振荡的一个重要标志,它可以将霍普夫分岔分为两种类型,这两种类型可以统一用于解释振荡机制。有趣的是,随着投射到GPe的耦合权重增加,皮质的ADR先增加后减少。关于霍普夫分岔临界条件,对GPe的抑制性投射与兴奋性投射之间的定量关系是单调增加的;相比之下,皮质中不同耦合权重之间的关系是单调减少的。一般来说,振荡幅度在分岔点附近最低,并随着振荡的演化达到最大值。GPe是深部脑刺激以减轻皮质振荡的一个有效靶点。