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Peroxisomal dysfunctions cause lysosomal storage and axonal Kv1 channel redistribution in peripheral neuropathy

Impairment of peripheral nerve function is frequent in neurometabolic diseases, but mechanistically not well understood. Here, we report a novel disease mechanism and the finding that glial lipid metabolism is critical for axon function, independent of myelin itself. Surprisingly, nerves of Schwann...

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Autores principales: Kleinecke, Sandra, Richert, Sarah, de Hoz, Livia, Brügger, Britta, Kungl, Theresa, Asadollahi, Ebrahim, Quintes, Susanne, Blanz, Judith, McGonigal, Rhona, Naseri, Kobra, Sereda, Michael W, Sachsenheimer, Timo, Lüchtenborg, Christian, Möbius, Wiebke, Willison, Hugh, Baes, Myriam, Nave, Klaus-Armin, Kassmann, Celia Michèle
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5417850/
https://www.ncbi.nlm.nih.gov/pubmed/28470148
http://dx.doi.org/10.7554/eLife.23332
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author Kleinecke, Sandra
Richert, Sarah
de Hoz, Livia
Brügger, Britta
Kungl, Theresa
Asadollahi, Ebrahim
Quintes, Susanne
Blanz, Judith
McGonigal, Rhona
Naseri, Kobra
Sereda, Michael W
Sachsenheimer, Timo
Lüchtenborg, Christian
Möbius, Wiebke
Willison, Hugh
Baes, Myriam
Nave, Klaus-Armin
Kassmann, Celia Michèle
author_facet Kleinecke, Sandra
Richert, Sarah
de Hoz, Livia
Brügger, Britta
Kungl, Theresa
Asadollahi, Ebrahim
Quintes, Susanne
Blanz, Judith
McGonigal, Rhona
Naseri, Kobra
Sereda, Michael W
Sachsenheimer, Timo
Lüchtenborg, Christian
Möbius, Wiebke
Willison, Hugh
Baes, Myriam
Nave, Klaus-Armin
Kassmann, Celia Michèle
author_sort Kleinecke, Sandra
collection PubMed
description Impairment of peripheral nerve function is frequent in neurometabolic diseases, but mechanistically not well understood. Here, we report a novel disease mechanism and the finding that glial lipid metabolism is critical for axon function, independent of myelin itself. Surprisingly, nerves of Schwann cell-specific Pex5 mutant mice were unaltered regarding axon numbers, axonal calibers, and myelin sheath thickness by electron microscopy. In search for a molecular mechanism, we revealed enhanced abundance and internodal expression of axonal membrane proteins normally restricted to juxtaparanodal lipid-rafts. Gangliosides were altered and enriched within an expanded lysosomal compartment of paranodal loops. We revealed the same pathological features in a mouse model of human Adrenomyeloneuropathy, preceding disease-onset by one year. Thus, peroxisomal dysfunction causes secondary failure of local lysosomes, thereby impairing the turnover of gangliosides in myelin. This reveals a new aspect of axon-glia interactions, with Schwann cell lipid metabolism regulating the anchorage of juxtaparanodal K(v)1-channels. DOI: http://dx.doi.org/10.7554/eLife.23332.001
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spelling pubmed-54178502017-05-08 Peroxisomal dysfunctions cause lysosomal storage and axonal Kv1 channel redistribution in peripheral neuropathy Kleinecke, Sandra Richert, Sarah de Hoz, Livia Brügger, Britta Kungl, Theresa Asadollahi, Ebrahim Quintes, Susanne Blanz, Judith McGonigal, Rhona Naseri, Kobra Sereda, Michael W Sachsenheimer, Timo Lüchtenborg, Christian Möbius, Wiebke Willison, Hugh Baes, Myriam Nave, Klaus-Armin Kassmann, Celia Michèle eLife Neuroscience Impairment of peripheral nerve function is frequent in neurometabolic diseases, but mechanistically not well understood. Here, we report a novel disease mechanism and the finding that glial lipid metabolism is critical for axon function, independent of myelin itself. Surprisingly, nerves of Schwann cell-specific Pex5 mutant mice were unaltered regarding axon numbers, axonal calibers, and myelin sheath thickness by electron microscopy. In search for a molecular mechanism, we revealed enhanced abundance and internodal expression of axonal membrane proteins normally restricted to juxtaparanodal lipid-rafts. Gangliosides were altered and enriched within an expanded lysosomal compartment of paranodal loops. We revealed the same pathological features in a mouse model of human Adrenomyeloneuropathy, preceding disease-onset by one year. Thus, peroxisomal dysfunction causes secondary failure of local lysosomes, thereby impairing the turnover of gangliosides in myelin. This reveals a new aspect of axon-glia interactions, with Schwann cell lipid metabolism regulating the anchorage of juxtaparanodal K(v)1-channels. DOI: http://dx.doi.org/10.7554/eLife.23332.001 eLife Sciences Publications, Ltd 2017-05-04 /pmc/articles/PMC5417850/ /pubmed/28470148 http://dx.doi.org/10.7554/eLife.23332 Text en © 2017, Kleinecke et al http://creativecommons.org/licenses/by/4.0/ This article is distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Neuroscience
Kleinecke, Sandra
Richert, Sarah
de Hoz, Livia
Brügger, Britta
Kungl, Theresa
Asadollahi, Ebrahim
Quintes, Susanne
Blanz, Judith
McGonigal, Rhona
Naseri, Kobra
Sereda, Michael W
Sachsenheimer, Timo
Lüchtenborg, Christian
Möbius, Wiebke
Willison, Hugh
Baes, Myriam
Nave, Klaus-Armin
Kassmann, Celia Michèle
Peroxisomal dysfunctions cause lysosomal storage and axonal Kv1 channel redistribution in peripheral neuropathy
title Peroxisomal dysfunctions cause lysosomal storage and axonal Kv1 channel redistribution in peripheral neuropathy
title_full Peroxisomal dysfunctions cause lysosomal storage and axonal Kv1 channel redistribution in peripheral neuropathy
title_fullStr Peroxisomal dysfunctions cause lysosomal storage and axonal Kv1 channel redistribution in peripheral neuropathy
title_full_unstemmed Peroxisomal dysfunctions cause lysosomal storage and axonal Kv1 channel redistribution in peripheral neuropathy
title_short Peroxisomal dysfunctions cause lysosomal storage and axonal Kv1 channel redistribution in peripheral neuropathy
title_sort peroxisomal dysfunctions cause lysosomal storage and axonal kv1 channel redistribution in peripheral neuropathy
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5417850/
https://www.ncbi.nlm.nih.gov/pubmed/28470148
http://dx.doi.org/10.7554/eLife.23332
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