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发育中的节律生成性脊髓网络中的神经相互作用:计算建模的见解。

Neural Interactions in Developing Rhythmogenic Spinal Networks: Insights From Computational Modeling.

机构信息

Department of Neurobiology and Anatomy, College of Medicine, Drexel University, Philadelphia, PA, United States.

出版信息

Front Neural Circuits. 2020 Dec 23;14:614615. doi: 10.3389/fncir.2020.614615. eCollection 2020.

Abstract

The mechanisms involved in generation of rhythmic locomotor activity in the mammalian spinal cord remain poorly understood. These mechanisms supposedly rely on both intrinsic properties of constituting neurons and interactions between them. A subset of Shox2 neurons was suggested to contribute to generation of spinal locomotor activity, but the possible cellular basis for rhythmic bursting in these neurons remains unknown. Ha and Dougherty (2018) recently revealed the presence of bidirectional electrical coupling between Shox2 neurons in neonatal spinal cords, which can be critically involved in neuronal synchronization and generation of populational bursting. Gap junctional connections found between functionally-related Shox2 interneurons decrease with age, possibly being replaced by increasing interactions through chemical synapses. Here, we developed a computational model of a heterogeneous population of neurons sparsely connected by electrical or/and chemical synapses and investigated the dependence of frequency of populational bursting on the type and strength of neuronal interconnections. The model proposes a mechanistic explanation that can account for the emergence of a synchronized rhythmic activity in the neuronal population and provides insights into the possible role of gap junctional coupling between Shox2 neurons in the spinal mechanisms for locomotor rhythm generation.

摘要

哺乳动物脊髓中产生节律性运动活动的机制仍知之甚少。这些机制据称依赖于构成神经元的固有特性及其相互作用。有人认为 Shox2 神经元的一个子集有助于产生脊髓运动活动,但这些神经元中节律性爆发的可能细胞基础尚不清楚。Ha 和 Dougherty(2018 年)最近揭示了新生脊髓中 Shox2 神经元之间存在双向电耦合,这可能对神经元同步和群体爆发的产生至关重要。在功能相关的 Shox2 中间神经元之间发现的缝隙连接连接随着年龄的增长而减少,可能通过化学突触的增加相互作用而被取代。在这里,我们开发了一个由稀疏电或/和化学突触连接的神经元异质群体的计算模型,并研究了群体爆发的频率对神经元连接类型和强度的依赖性。该模型提出了一种机制解释,可以解释神经元群体中同步节律活动的出现,并为 Shox2 神经元之间缝隙连接耦合在脊髓运动节律产生机制中的可能作用提供了见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8ea0/7787004/5ae64d21dced/fncir-14-614615-g0001.jpg

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