Literature DB >> 978232

Potential of Schwann cells from unmyelinated nerves to produce myelin: a quantitative ultrastructural and radiographic study.

A J Aguayo, L Charron, G M Bray.   

Abstract

In adult mice, most fibres in the cervical sympathetic trunk (CST) are unmyelinated whereas a large proportion of sural nerve fibres are myelinated. This study of nerve grafts in syngeneic mice was designed to determine if Schwann cells originating from the unmyelinated CST would produce myelin when in contact with regenerating axons of the sural nerve. Quantitative microscopy of triated thymidine-labelled CST segments grafted to unlabelled sural nerve stumps revealed that, one month after grafting, previously unmyelinated grafts contained many myelinated fibres. By phase and electron microscope radioautography, nearly 40% of the myelin-producing cells in the reinnervated graft were shown to have originated in the unmyelinated CST. These findings indicate that Schwann cells originating from unmyelinated fibres are able to differentiate into myelin producing cells.

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Mesh:

Year:  1976        PMID: 978232     DOI: 10.1007/BF01175570

Source DB:  PubMed          Journal:  J Neurocytol        ISSN: 0300-4864


  51 in total

1.  A distal Schwann cell-specific enhancer mediates axonal regulation of the Oct-6 transcription factor during peripheral nerve development and regeneration.

Authors:  W Mandemakers; R Zwart; M Jaegle; E Walbeehm; P Visser; F Grosveld; D Meijer
Journal:  EMBO J       Date:  2000-06-15       Impact factor: 11.598

2.  A distal upstream enhancer from the myelin basic protein gene regulates expression in myelin-forming schwann cells.

Authors:  R Forghani; L Garofalo; D R Foran; H F Farhadi; P Lepage; T J Hudson; I Tretjakoff; P Valera; A Peterson
Journal:  J Neurosci       Date:  2001-06-01       Impact factor: 6.167

3.  Selective downregulation of an inactivating K+ conductance by analogues of cAMP in mouse Schwann cells.

Authors:  S Despeyroux; C Beaudu-Lange; J A Coles; T Amédée
Journal:  J Physiol       Date:  1997-03-15       Impact factor: 5.182

4.  Do Action Potentials Regulate Myelination?

Authors:  Bernard Zalc; R Douglas Fields
Journal:  Neuroscientist       Date:  2000-02       Impact factor: 7.519

5.  Schwann-cell differentiation in clonal cultures of the neural crest, as evidenced by the anti-Schwann cell myelin protein monoclonal antibody.

Authors:  E Dupin; A Baroffio; C Dulac; P Cameron-Curry; N M Le Douarin
Journal:  Proc Natl Acad Sci U S A       Date:  1990-02       Impact factor: 11.205

6.  GDNF-enhanced axonal regeneration and myelination following spinal cord injury is mediated by primary effects on neurons.

Authors:  Liqun Zhang; Zhengwen Ma; George M Smith; Xuejun Wen; Yelena Pressman; Patrick M Wood; Xiao-Ming Xu
Journal:  Glia       Date:  2009-08-15       Impact factor: 7.452

7.  Rat Cortical Oligodendrocyte-Embryonic Motoneuron Co-Culture: An In Vitro Axon-Oligodendrocyte Interaction Model.

Authors:  Hedvika Davis; Mercedes Gonzalez; Neelima Bhargava; Maria Stancescu; James J Hickman; Stephen Lambert
Journal:  J Biomater Tissue Eng       Date:  2012-09

8.  Neuronal influence on glial enzyme expression: evidence from mutant mouse cerebella.

Authors:  M Fisher
Journal:  Proc Natl Acad Sci U S A       Date:  1984-07       Impact factor: 11.205

9.  Cyclic AMP-stimulated protein kinase activity in rabbit peripheral myelin.

Authors:  V Zabrenetzky; V Krygier-Brévart; P S Spencer
Journal:  Neurochem Res       Date:  1984-01       Impact factor: 3.996

10.  Defective Schwann cell function in canine inherited hypertrophic neuropathy.

Authors:  B J Cooper; I Duncan; J Cummings; A de Lahunta
Journal:  Acta Neuropathol       Date:  1984       Impact factor: 17.088

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