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缝隙连接在鸡视网膜中的分布。

Distribution of gap junctions in the chicken retina.

作者信息

Ladewig T, Hanke W, Goldermann M, Guimaraes de Almeida A C, Fernandes de Lima V M

机构信息

Universität Hohenheim, Institut für Physiologie, Stuttgart, Germany.

出版信息

J Hirnforsch. 1998;39(1):77-86.

PMID:9672113
Abstract

Coupling between cells of neuronal tissue can be due to electrical or chemical synapses. The molecular basis of an electrical synapse is the gap junction channel. Gap junctions have been found between neurones and glial cells, however, in some tissue their presence in the membranes of different cell types is still under discussion. In the retina of vertebrates, which is a true part of the CNS, the presence of gap junctions in the specialised glial cells of the retina, the Müller cells is not clear for chicken. Since these cells span the whole retina vertically, for some tasks, like spatial buffering of potassium, such gap junctions would not be required, in contrast to other parts of the CNS. The spatial buffering of potassium among others plays an important role in the propagation of excitation-depression waves in neuronal tissue, especially in the chicken retina. However, gap junctions could be involved in creating an electrical syncitium of glial cells, which might also contribute to excitation-depression wave propagation. In this paper we present an about complete screening of the presence of gap junctions in the chicken retina, including the proof that the Müller cells of this retina do not have gap junctions. This finding is discussed considering the highly specialised morphological structure of the Müller cells of the chicken retina, which have an extremely extended endfeet tree.

摘要

神经组织细胞间的耦合可能是由于电突触或化学突触。电突触的分子基础是缝隙连接通道。在神经元和神经胶质细胞之间已发现缝隙连接,然而,在某些组织中,不同细胞类型的膜中是否存在缝隙连接仍在讨论中。在作为中枢神经系统真正一部分的脊椎动物视网膜中,鸡视网膜中特化的神经胶质细胞即穆勒细胞中是否存在缝隙连接尚不清楚。由于这些细胞垂直贯穿整个视网膜,对于某些任务,如钾的空间缓冲,与中枢神经系统的其他部分不同,这种缝隙连接并非必需。钾的空间缓冲等在神经组织尤其是鸡视网膜中兴奋 - 抑制波的传播中起重要作用。然而,缝隙连接可能参与形成神经胶质细胞的电合体,这也可能有助于兴奋 - 抑制波传播。在本文中,我们对鸡视网膜中缝隙连接的存在进行了近乎全面的筛查,包括证明该视网膜的穆勒细胞没有缝隙连接。考虑到鸡视网膜穆勒细胞高度特化的形态结构,即具有极其延伸的终足树,对这一发现进行了讨论。

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