皮层-基底神经节-丘脑模型的分岔分析和潜在景观。

IF 1.9 4区 生物学 Q4 CELL BIOLOGY IET Systems Biology Pub Date : 2021-05-01 Epub Date: 2021-04-16 DOI:10.1049/syb2.12018
Chenri Yan, Quansheng Liu, Yuanhong Bi
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引用次数: 6

摘要

皮层神经元活动的动态在控制机体运动中起着重要作用,并受皮层-基底神经节-丘脑(BGCT)回路中神经元之间连接权的调节。皮层活动的β带振荡与帕金森病的运动障碍密切相关,而帕金森病的运动障碍是由BGCT回路中直接通路和间接通路的连接权不平衡引起的。在这项研究中,作者通过分岔分析和潜在景观研究了低多巴胺水平下BGCT环路中直接和间接通路的连接权如何调节皮质活动的动态。结果表明,在不同连接权下,脑皮层活动表现出丰富的动态变化,包括1个、2个或3个稳定稳态,1个或2个稳定极限环,以及1个稳定极限环与1个稳定稳态或2个稳定极限环共存。当多巴胺水平较低时,直接和间接通路的连接权重较大时,皮层活动呈现振荡。这些稳定动态的稳定性是通过潜在景观来探索的。
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Bifurcation analyses and potential landscapes of a cortex-basal ganglia-thalamus model.

The dynamics of cortical neuronal activity plays important roles in controlling body movement and is regulated by connection weights between neurons in a cortex-basal ganglia-thalamus (BGCT) loop. Beta-band oscillation of cortical activity is closely associated with the movement disorder of Parkinson's disease, which is caused by an imbalance in the connection weights of direct and indirect pathways in the BGCT loop. In this study, the authors investigate how the dynamics of cortical activity are modulated by connection weights of direct and indirect pathways in the BGCT loop under low dopamine levels through bifurcation analyses and potential landscapes. The results reveal that cortical activity displays rich dynamics under different connection weights, including one, two, or three stable steady states, one or two stable limit cycles, and the coexistence of one stable limit cycle with one stable steady state or two stable ones. For a low dopamine level, cortical activity exhibits oscillation for larger connection weights of direct and indirect pathways. The stability of these stable dynamics is explored by the potential landscapes.

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来源期刊
IET Systems Biology
IET Systems Biology 生物-数学与计算生物学
CiteScore
4.20
自引率
4.30%
发文量
17
审稿时长
>12 weeks
期刊介绍: IET Systems Biology covers intra- and inter-cellular dynamics, using systems- and signal-oriented approaches. Papers that analyse genomic data in order to identify variables and basic relationships between them are considered if the results provide a basis for mathematical modelling and simulation of cellular dynamics. Manuscripts on molecular and cell biological studies are encouraged if the aim is a systems approach to dynamic interactions within and between cells. The scope includes the following topics: Genomics, transcriptomics, proteomics, metabolomics, cells, tissue and the physiome; molecular and cellular interaction, gene, cell and protein function; networks and pathways; metabolism and cell signalling; dynamics, regulation and control; systems, signals, and information; experimental data analysis; mathematical modelling, simulation and theoretical analysis; biological modelling, simulation, prediction and control; methodologies, databases, tools and algorithms for modelling and simulation; modelling, analysis and control of biological networks; synthetic biology and bioengineering based on systems biology.
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