Nagy James I, Dudek F Edward, Rash John E
Department of Physiology, Faculty of Medicine, University of Manitoba, 730 William Avenue Winnipeg, Manitoba, Canada R3E 3J7.
Brain Res Brain Res Rev. 2004 Dec;47(1-3):191-215. doi: 10.1016/j.brainresrev.2004.05.005.
Among the 20 proposed members of the connexin family of proteins that form gap junctional intercellular communication (GJIC) channels in mammalian tissues, over half are reported to be expressed in the nervous system. There have been conflicting observations, however, concerning the particular connexins expressed by astrocytes, oligodendrocytes, Schwann cells and neurons. Identification of the several connexin proteins at gap junctions between each neuronal and glial cell type is essential for the rational design of investigations into the functions of GJIC between glial cells and into the functional contributions of electrical and "mixed" (chemical plus electrical) synapses to communication between neurons in the mammalian nervous system. In this report, we provide a summary of recent findings regarding the localization of connexins in gap junctions between glial cells and between neurons. Attention is drawn to technical considerations involved in connexin localization by light and electron microscope immunohistochemistry and to limitations of physiological methods and approaches currently used to analyze neuronal and glial coupling. Early physiological studies that provided evidence for the presence of gap junctions and electrical synapses in isolated regions of the mammalian brain and spinal cord are reexamined in light of recent evidence for widely expressed neuron-specific connexins and for the existence of several newly discovered types of gap junctions linking neurons.
在构成哺乳动物组织中缝隙连接细胞间通讯(GJIC)通道的连接蛋白家族的20种候选成员中,据报道半数以上在神经系统中表达。然而,关于星形胶质细胞、少突胶质细胞、施万细胞和神经元所表达的特定连接蛋白,一直存在相互矛盾的观察结果。确定每种神经元和神经胶质细胞类型之间缝隙连接处的几种连接蛋白,对于合理设计关于神经胶质细胞间GJIC功能以及电突触和“混合”(化学加电)突触对哺乳动物神经系统中神经元间通讯的功能贡献的研究至关重要。在本报告中,我们总结了关于连接蛋白在神经胶质细胞之间以及神经元之间缝隙连接处定位的最新发现。提请注意通过光镜和电镜免疫组织化学进行连接蛋白定位所涉及的技术考量,以及目前用于分析神经元和神经胶质细胞耦合的生理学方法和途径的局限性。鉴于最近关于广泛表达的神经元特异性连接蛋白以及连接神经元的几种新发现类型的缝隙连接存在的证据,对早期为哺乳动物脑和脊髓孤立区域中缝隙连接和电突触的存在提供证据的生理学研究进行了重新审视。