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探寻电突触:展望未来

On the search for the electrical synapse: a glimpse at the future.

作者信息

Zoidl Georg, Dermietzel Rolf

机构信息

Department of Neuroanatomy and Molecular Brain Research, Ruhr University Bochum, University Street 150, 44780 Bochum, Germany.

出版信息

Cell Tissue Res. 2002 Nov;310(2):137-42. doi: 10.1007/s00441-002-0632-x. Epub 2002 Sep 28.

Abstract

The traditional concept of electrotonic synapses suggests that they synchronize outputs from coupled neurons and provide rapid impulse propagation between pre- and postsynaptic elements. These properties have provided an evolutionary advantage in certain behavioral repertoires, for example, in the rapid impulse propagation between axonal segments in the crayfish and in electrotonic synapses on motoneurons. Recent theoretical and experimental evidence, in particular with regard to neuronal synchronization, ultrastructure and molecular biology, shows that this concept has new relevance. In particular, computer simulations demonstrated that neurons synchronize and alter their firing patterns depending on gap-junctional communication. The cloning of neuronal gap-junction proteins and the ablation of the neuronal connexin36 (Cx36) provided novel insights into the extent and functional significance of electrotonic coupling between paired interneurons. Furthermore, electrophysiological recording of gap-junctional communication supports its importance in network behavior. Hence, in addition to chemical transmission, direct coupling by electrotonic synapses is now accepted to provide a second major pathway contributing to normal and abnormal physiological rhythms.

摘要

传统的电突触概念表明,它们可使耦合神经元的输出同步,并在突触前和突触后元件之间实现快速冲动传播。这些特性在某些行为模式中提供了进化优势,例如,在小龙虾轴突节段之间的快速冲动传播以及运动神经元上的电突触中。最近的理论和实验证据,特别是关于神经元同步、超微结构和分子生物学方面的证据,表明这一概念有了新的意义。特别是,计算机模拟表明,神经元会根据缝隙连接通讯进行同步并改变其放电模式。神经元缝隙连接蛋白的克隆以及神经元连接蛋白36(Cx36)的缺失,为深入了解配对中间神经元之间电耦合的程度和功能意义提供了新线索。此外,缝隙连接通讯的电生理记录也支持其在网络行为中的重要性。因此,除了化学传递外,现在人们认为电突触的直接耦合是促成正常和异常生理节律的第二条主要途径。

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