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Publication : Differential stability of PNS and CNS nodal complexes when neuronal neurofascin is lost.

First Author  Desmazieres A Year  2014
Journal  J Neurosci Volume  34
Issue  15 Pages  5083-8
PubMed ID  24719087 Mgi Jnum  J:208119
Mgi Id  MGI:5561141 Doi  10.1523/JNEUROSCI.4662-13.2014
Citation  Desmazieres A, et al. (2014) Differential Stability of PNS and CNS Nodal Complexes When Neuronal Neurofascin Is Lost. J Neurosci 34(15):5083-8
abstractText  Fast, saltatory conduction in myelinated nerves requires the clustering of voltage-gated sodium channels (Nav) at nodes of Ranvier in a nodal complex. The Neurofascin (Nfasc) gene encodes neuronal Neurofascin 186 (Nfasc186) at the node and glial Neurofascin 155 at the paranode, and these proteins play a key role in node assembly. However, their role in the maintenance and stability of the node is less well understood. Here we show that by inducible ablation of Nfasc in neurons in adult mice, Nfasc186 expression is reduced by >99% and 94% at PNS and CNS nodes, respectively. Gliomedin and NrCAM at PNS and brevican at CNS nodes are largely lost with neuronal neurofascin; however, Nav at nodes of Ranvier persist, albeit with approximately 40% reduction in expression levels. betaIV Spectrin, ankyrin G, and, to a lesser extent, the beta1 subunit of the sodium channel, are less affected at the PNS node than in the CNS. Nevertheless, there is a 38% reduction in PNS conduction velocity. Loss of Nfasc186 provokes CNS paranodal disorganization, but this does not contribute to loss of Nav. These results show that Nav at PNS nodes are still maintained in a nodal complex when neuronal neurofascin is depleted, whereas the retention of nodal Nav in the CNS, despite more extensive dissolution of the complex, suggests a supportive role for the partially disrupted paranodal axoglial junction in selectively maintaining Nav at the CNS node.
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