The expression of connexin43 mRNA was detected in adult rat brains by in situ hybridization methods. Specific digoxigenin riboprobes were generated by in vitro transcription of two PCR-amplified fragments of connexin43 cDNA which lack homology with any other published connexin. Following immunohistochemical detection, the digoxigenin cRNA was found to occur in various neuronal populations including Purkinje cells of the cerebellum, pyramidal cells of the neocortex and the hippocampal formation, as well as granule cells of the dentate gyrus and various neurons of diverse hindbrain nuclei. This ubiquituous expression of connexin43 mRNA in adult neurons, in particular in neocortical pyramidal cells, is surprising insofar as gap junction communication in adult bains has been considered to be confined to specific subpopulations of neurons revealing a high incidence of synchronized electrical activities in contrast to the postnatal brain where interneuronal coupling via gap junctions precedes the formation of chemical transmission. In addition, connexin43 is regarded as being preferentially expressed in astrocytes, although its presence in adult neurons has not definitely been excluded. We propose that adult neurons preserve their capability of expressing functional gap junctions more frequently than presently considered and that connexin43 is a most likely neuronal gap junction protein candidate.
Analyses of freeze-fracture replicas of mouse olfactory bulb reveal the presence of gap junctions in the plasma membranes of the cell bodies of mitral cells. Due to their localization and morphology we presume that they interconnect mitral and granule cells. Since the quality of electrical transmission between neurons is considered to be determined by the biochemical nature of the gap junction channel forming proteins (connexins) we performed immunohistochemistry and in situ hybridization using probes for connexin43 (Cx43), the most abundant connexin in brain tissue. Attribution of Cx43 immunolabel to specific neurons could not definitely be assessed by means of immunohistochemistry. In situ hybridization, however, using a specific cRNA probe for Cx43 revealed a label confined to cell bodies of mitral and tufted cells of the olfactory bulb. These data indicate that Cx43 is expressed by bulbar neurons and suggest that Cx43 is a molecular constituent of gap junction channels in neurons.
The identification of connexin32 (Cx32) in myelinating Schwann cells and the association of Cx32 mutations with peripheral neuropathies suggest a functional role for gap junction proteins in the nerve. However, after nerve crush injury, Cx32 expression dramatically decreases in Schwann cells in the degenerating region, returning to control levels at newly formed nodes of Ranvier and Schmidt-Lantermann incisures by 30 days. The present study examined increases in expression of other connexins that occur after peripheral nerve injury. A 56/58-kDa connexin46 (Cx46) protein species was detected in adult rat sciatic nerve, along with very low levels of Cx46 mRNA. However, by 3 days after crush injury, coincident with changes in Schwann cell phenotype, Cx46 mRNA rapidly increased in the degenerating regions. Additionally, the 56/58-kDa Cx46 protein species present in adult nerve decreased and a 53-kDa Cx46 species, which was also present in cultured Schwann cells, became apparent. Connexin43 (Cx43) mRNA and protein, which was localized to perineurial cells in adult nerve, dramatically increased in endoneurial fibroblasts in the crush and distal regions by 3 days, coincident with macrophage infiltration. By 12 days after injury, Cx43 decreased and was comparable to normal nerve. These results suggest that enhanced expression of Cx46 and Cx43, by nonneuronal cells, may be important for the injury and regenerative responses of peripheral nerves.