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星型胶质细胞等电势和钙相关生物磁场对皮质神经元偶联的影响。

Astroglial Isopotentiality and Calcium-Associated Biomagnetic Field Effects on Cortical Neuronal Coupling.

机构信息

Department of Pathology, Lluis Alcanyis Hospital, Xátiva, 48006 Valencia, Spain.

出版信息

Cells. 2020 Feb 13;9(2):439. doi: 10.3390/cells9020439.

Abstract

Synaptic neurotransmission is necessary but does not sufficiently explain superior cognitive faculties. Growing evidence has shown that neuron-astroglial chemical crosstalk plays a critical role in the processing of information, computation, and memory. In addition to chemical and electrical communication among neurons and between neurons and astrocytes, other nonsynaptic mechanisms called ephaptic interactions can contribute to the neuronal synchronization from different brain regions involved in the processing of information. New research on brain astrocytes has clearly shown that the membrane potential of these cells remains very stable among neighboring and distant astrocytes due to the marked bioelectric coupling between them through gap junctions. This finding raises the possibility that the neocortical astroglial network exerts a guiding template modulating the excitability and synchronization of trillions of neurons by astroglial Ca-associated bioelectromagnetic interactions. We propose that bioelectric and biomagnetic fields of the astroglial network equalize extracellular local field potentials (LFPs) and associated local magnetic field potentials (LMFPs) in the cortical layers of the brain areas involved in the processing of information, contributing to the adequate and coherent integration of external and internal signals. This article reviews the current knowledge of ephaptic interactions in the cerebral cortex and proposes that the isopotentiality of cortical astrocytes is a prerequisite for the maintenance of the bioelectromagnetic crosstalk between neurons and astrocytes in the neocortex.

摘要

突触神经传递是必要的,但不足以解释卓越的认知能力。越来越多的证据表明,神经元-星形胶质细胞的化学串扰在信息处理、计算和记忆中起着关键作用。除了神经元之间以及神经元和星形胶质细胞之间的化学和电通信外,其他称为电突触相互作用的非突触机制也可以促进参与信息处理的不同脑区的神经元同步。关于脑星形胶质细胞的新研究清楚地表明,由于它们之间通过缝隙连接的明显生物电偶联,这些细胞的膜电位在相邻和遥远的星形胶质细胞之间保持非常稳定。这一发现提出了一种可能性,即新皮层星形胶质细胞网络通过星形胶质细胞 Ca 相关生物电磁相互作用发挥引导模板的作用,调节数十亿个神经元的兴奋性和同步性。我们提出,星形胶质细胞网络的生物电和生物磁场使脑区信息处理相关皮层层的细胞外局部场电位(LFPs)和相关局部磁场电位(LMFPs)均等化,有助于外部和内部信号的充分和连贯整合。本文综述了大脑皮层电突触相互作用的最新知识,并提出皮质星形胶质细胞的等电位性是维持新皮层神经元和星形胶质细胞之间生物电磁串扰的前提。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a4e7/7073214/c7831deebc2e/cells-09-00439-g001.jpg

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