Literature DB >> 1964467

On the organization of astrocytic gap junctions in rat brain as suggested by LM and EM immunohistochemistry of connexin43 expression.

T Yamamoto1, A Ochalski, E L Hertzberg, J I Nagy.   

Abstract

Gap junctions and the intercellular communication syncytium they form between glial cells are thought to play a critical role in glial maintenance of appropriate metabolic environments in neural tissues. We have previously suggested (Yamamoto et al., Brain Res. 508:313-319, '90) that the vast majority of astrocytes in rat brain express connexin43, one of several recently identified gap junction proteins. Here, we confirm ultrastructurally that astrocytes in a number of brain regions of rat are immunolabelled with an antibody against connexin43 and that neurons and oligodendrocytes are devoid of labelling. The distribution of connexin43 immunoreactivity throughout the brain is presented at the light microscope (LM) level. By LM, immunoreactive structures consisted primarily of round or elongated puncta ranging from 0.3 microns to 4 microns in length and of annular profiles ranging from 1 to 10 microns in diameter. Immunolabelled fibrous processes were only occasionally seen and no labelling was observed in astrocytic cell bodies. Long, linear arrays of puncta were rare in gray matter but were common in white matter where they were arranged parallel to myelinated fibers. Puncta organized in a honeycomb pattern were seen near the cerebral cortical surface and frequently around blood vessels. Regional immunoreaction density, which was a reflection of either the concentration or staining intensity of immunoreactive elements, was remarkably heterogeneous; dramatic differences in labelling intensity frequently delineated anatomical boundaries between adjacent nuclei. Abrupt as well as graded fluctuations of immunoreaction intensity were also observed within nuclear structures. By electron microscopy (EM), gap junctions of fibrous and protoplasmic astrocytes were intensely stained and labelled organelles were often observed intracellularly in areas near gap junctions. These junctions and the spread of immunoreaction product to perijunctional organelles in their vicinity were considered to correspond to puncta seen by LM. Labelling within astrocytic cell bodies was seen in only a few instances. In some brain areas, astrocytic processes commonly gave rise to immunoreactive lamellae that partially ensheathed neuronal cell bodies, axon terminals, dendrites, and synaptic glomeruli. Such lamellae were considered to correspond to immunoreactive annular profiles seen by LM. Perivascular endfoot processes of astrocytes displayed intense staining of their gap junctions and portions of their apposing membranes.(ABSTRACT TRUNCATED AT 400 WORDS)

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Year:  1990        PMID: 1964467     DOI: 10.1002/cne.903020414

Source DB:  PubMed          Journal:  J Comp Neurol        ISSN: 0021-9967            Impact factor:   3.215


  40 in total

1.  Extracellular Ca²⁺ acts as a mediator of communication from neurons to glia.

Authors:  Arnulfo Torres; Fushun Wang; Qiwu Xu; Takumi Fujita; Radoslaw Dobrowolski; Klaus Willecke; Takahiro Takano; Maiken Nedergaard
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Review 2.  Gap junctions couple astrocytes and oligodendrocytes.

Authors:  Jennifer L Orthmann-Murphy; Charles K Abrams; Steven S Scherer
Journal:  J Mol Neurosci       Date:  2008-05       Impact factor: 3.444

Review 3.  Molecular disruptions of the panglial syncytium block potassium siphoning and axonal saltatory conduction: pertinence to neuromyelitis optica and other demyelinating diseases of the central nervous system.

Authors:  J E Rash
Journal:  Neuroscience       Date:  2009-10-20       Impact factor: 3.590

4.  Increased intercellular communication in mouse astrocytes exposed to hyposmotic shocks.

Authors:  E Scemes; D C Spray
Journal:  Glia       Date:  1998-09       Impact factor: 7.452

5.  Connexin-47 and connexin-32 in gap junctions of oligodendrocyte somata, myelin sheaths, paranodal loops and Schmidt-Lanterman incisures: implications for ionic homeostasis and potassium siphoning.

Authors:  N Kamasawa; A Sik; M Morita; T Yasumura; K G V Davidson; J I Nagy; J E Rash
Journal:  Neuroscience       Date:  2005-10-03       Impact factor: 3.590

6.  A dominant connexin43 mutant does not have dominant effects on gap junction coupling in astrocytes.

Authors:  Sameh Wasseff; Charles K Abrams; Steven S Scherer
Journal:  Neuron Glia Biol       Date:  2011-03-04

7.  Differential expression of connexins during neocortical development and neuronal circuit formation.

Authors:  B Nadarajah; A M Jones; W H Evans; J G Parnavelas
Journal:  J Neurosci       Date:  1997-05-01       Impact factor: 6.167

8.  Changes in the properties of gap junctions during neuronal differentiation of hippocampal progenitor cells.

Authors:  R Rozental; M Morales; M F Mehler; M Urban; M Kremer; R Dermietzel; J A Kessler; D C Spray
Journal:  J Neurosci       Date:  1998-03-01       Impact factor: 6.167

9.  Cell-specific expression of connexins and evidence of restricted gap junctional coupling between glial cells and between neurons.

Authors:  J E Rash; T Yasumura; F E Dudek; J I Nagy
Journal:  J Neurosci       Date:  2001-03-15       Impact factor: 6.167

10.  Reduced connexin 43 immunolabeling in the orbitofrontal cortex in alcohol dependence and depression.

Authors:  José Javier Miguel-Hidalgo; Barbara A Wilson; Syed Hussain; Ashish Meshram; Grazyna Rajkowska; Craig A Stockmeier
Journal:  J Psychiatr Res       Date:  2014-04-16       Impact factor: 4.791

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