Literature DB >> 18041093

Glial ensheathment of peripheral axons in Drosophila.

Swati Banerjee1, Manzoor A Bhat.   

Abstract

The ensheathment of neurons and their axons creates an ion-sensitive microenvironment that allows rapid conduction of nerve impulses. One of the fundamental questions about axonal ensheathment is how insulating glial cells wrap around axons. The mechanisms that underlie insulation of axons in invertebrates and vertebrates are not fully understood. In the present article we address cellular aspects of axonal ensheathment in Drosophila by taking advantage of glial mutants that illustrate a range of phenotypic defects including ensheathment of axons. From the findings of these mutant studies, we summarize that loss of glial cells, defects in glial membrane wrapping, failure of glial migration, and loss of specialized ladderlike septate junctions between ensheathing glial membranes result in axon-glial functional defects. These studies provide a broad perspective on glial ensheathment of axons in Drosophila and key insights into the anatomical and cellular aspects of axonal insulation. Given the powerful genetic approaches available in Drosophila, the axonal ensheathment process can be dissected in great detail to reveal the fundamental principles of ensheathment. These observations will be relevant to understanding the very similar processes in vertebrates, where defects in glial cell functions lead to devastating neurological diseases. 2007 Wiley-Liss, Inc.

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Year:  2008        PMID: 18041093      PMCID: PMC2830789          DOI: 10.1002/jnr.21574

Source DB:  PubMed          Journal:  J Neurosci Res        ISSN: 0360-4012            Impact factor:   4.164


  100 in total

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7.  Gliotactin, a novel transmembrane protein on peripheral glia, is required to form the blood-nerve barrier in Drosophila.

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  19 in total

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Review 6.  Axonal ensheathment and intercellular barrier formation in Drosophila.

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Review 7.  Myelination and regional domain differentiation of the axon.

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Review 9.  The curious case of NG2 cells: transient trend or game changer?

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