Nagy J I, Rash J E
Department of Physiology, Faculty of Medicine, University of Manitoba, Winnipeg, Canada.
Brain Res Brain Res Rev. 2000 Apr;32(1):29-44. doi: 10.1016/s0165-0173(99)00066-1.
This review article summarizes early and recent literature on the structure, distribution and composition of gap junctions between astrocytes and oligodendrocytes, and the differential expression of glial connexins in adult and developing mammalian CNS. In addition to an overview of the topic, discussion is focused on the organization of homologous gap junctional interactions between astrocytes and between oligodendrocytes as well as on heterologous junctional coupling between astrocytes and oligodendrocytes. The homotypic and heterotypic nature of these gap junctions is related to the connexins known to be produced by glial cells in the intact brain and spinal cord. Emphasis is placed on the ultrastructural level of analysis required to attribute gap junction and connexin deployment to particular cell types and subcellular locations. Our aim is to provide a firm basis for consideration of anticipated rapid advances in understanding of structural relationships of gap junctions and connexins within the glial gap junctional syncytium. Conclusions to date suggest that the glial syncytium is more complex than previously appreciated and that glial pathways of junctional communication may not only be determined by the presence of gap junctions, but also by the connexin composition and conductance regulation of junctional channels.
这篇综述文章总结了关于星形胶质细胞和少突胶质细胞之间缝隙连接的结构、分布和组成,以及成年和发育中的哺乳动物中枢神经系统中胶质连接蛋白差异表达的早期和近期文献。除了对该主题的概述外,讨论的重点是星形胶质细胞之间以及少突胶质细胞之间同源缝隙连接相互作用的组织,以及星形胶质细胞和少突胶质细胞之间的异源连接耦合。这些缝隙连接的同型和异型性质与已知由完整脑和脊髓中的胶质细胞产生的连接蛋白有关。重点在于将缝隙连接和连接蛋白的分布归因于特定细胞类型和亚细胞位置所需的超微结构分析水平。我们的目的是为考虑在理解胶质缝隙连接合胞体内缝隙连接和连接蛋白的结构关系方面预期的快速进展提供坚实的基础。迄今为止的结论表明,胶质合胞体比以前认识到的更为复杂,并且连接通讯的胶质途径可能不仅由缝隙连接的存在决定,还由连接通道的连接蛋白组成和电导调节决定。