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昼夜节律钟视交叉上核中的细胞通讯。

Cellular communication in the circadian clock, the suprachiasmatic nucleus.

作者信息

van den Pol A N, Dudek F E

机构信息

Section of Neurosurgery, Yale University Medical School, New Haven, CT 06510.

出版信息

Neuroscience. 1993 Oct;56(4):793-811. doi: 10.1016/0306-4522(93)90128-3.

Abstract

The hypothalamic suprachiasmatic nucleus functions as the circadian clock in the mammalian brain. Communication between the cells of the suprachiasmatic nucleus is likely to be responsible for the generation and accuracy of this biological clock. Communication between many cells of the brain is mediated by action potentials that pass down the axon and cause release of neurotransmitters at the neuronal synaptic junction. Additional mechanisms of cellular communication appear to operate in the suprachiasmatic nucleus. Several lines of evidence point to multiple modes of cellular communication: these include the continuing operation of the clock after Na(+)-mediated action potentials have been blocked, the orchestrated metabolic rhythms of suprachiasmatic nucleus cells prior to synaptogenesis, the entrainment of fetal to maternal rhythms, and the rapid recovery of function after suprachiasmatic nucleus transplants into arrhythmic rodents. Possible alternative means of intercellular communication in the suprachiasmatic nucleus are examined, including calcium spikes in presynaptic dendrites, ephaptic interaction, paracrine communication, glial mediation, and gap junctions. This paper identifies and examines some of the unanswered questions related to intercellular communication of suprachiasmatic nucleus cells.

摘要

下丘脑视交叉上核作为哺乳动物大脑中的昼夜节律时钟发挥作用。视交叉上核细胞之间的通讯可能是这个生物钟产生及准确性的原因。大脑中许多细胞之间的通讯是由沿轴突传递并在神经元突触连接处引起神经递质释放的动作电位介导的。视交叉上核似乎存在细胞通讯的其他机制。多条证据指向多种细胞通讯模式:这些包括在Na(+)介导的动作电位被阻断后时钟仍持续运行、在突触形成之前视交叉上核细胞精心编排的代谢节律、胎儿对母体节律的同步以及视交叉上核移植到无节律啮齿动物后功能的快速恢复。文中研究了视交叉上核中细胞间通讯的可能替代方式,包括突触前树突中的钙尖峰、电突触相互作用、旁分泌通讯、胶质细胞介导和缝隙连接。本文识别并研究了一些与视交叉上核细胞间通讯相关的未解决问题。

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