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Psychosine enhances the shedding of membrane microvesicles: Implications in demyelination in Krabbe’s disease

In prior studies, our laboratory showed that psychosine accumulates and disrupts lipid rafts in brain membranes of Krabbe’s disease. A model of lipid raft disruption helped explaining psychosine’s effects on several signaling pathways important for oligodendrocyte survival and differentiation but pr...

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Autores principales: D’Auria, Ludovic, Reiter, Cory, Ward, Emma, Moyano, Ana Lis, Marshall, Michael S., Nguyen, Duc, Scesa, Giuseppe, Hauck, Zane, van Breemen, Richard, Givogri, Maria I., Bongarzone, Ernesto R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5439731/
https://www.ncbi.nlm.nih.gov/pubmed/28531236
http://dx.doi.org/10.1371/journal.pone.0178103
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author D’Auria, Ludovic
Reiter, Cory
Ward, Emma
Moyano, Ana Lis
Marshall, Michael S.
Nguyen, Duc
Scesa, Giuseppe
Hauck, Zane
van Breemen, Richard
Givogri, Maria I.
Bongarzone, Ernesto R.
author_facet D’Auria, Ludovic
Reiter, Cory
Ward, Emma
Moyano, Ana Lis
Marshall, Michael S.
Nguyen, Duc
Scesa, Giuseppe
Hauck, Zane
van Breemen, Richard
Givogri, Maria I.
Bongarzone, Ernesto R.
author_sort D’Auria, Ludovic
collection PubMed
description In prior studies, our laboratory showed that psychosine accumulates and disrupts lipid rafts in brain membranes of Krabbe’s disease. A model of lipid raft disruption helped explaining psychosine’s effects on several signaling pathways important for oligodendrocyte survival and differentiation but provided more limited insight in how this sphingolipid caused demyelination. Here, we have studied how this cationic inverted coned lipid affects the fluidity, stability and structure of myelin and plasma membranes. Using a combination of cutting-edge imaging techniques in non-myelinating (red blood cell), and myelinating (oligodendrocyte) cell models, we show that psychosine is sufficient to disrupt sphingomyelin-enriched domains, increases the rigidity of localized areas in the plasma membrane, and promotes the shedding of membranous microvesicles. The same physicochemical and structural changes were measured in myelin membranes purified from the mutant mouse Twitcher, a model for Krabbe’s disease. Areas of higher rigidity were measured in Twitcher myelin and correlated with higher levels of psychosine and of myelin microvesiculation. These results expand our previous analyses and support, for the first time a pathogenic mechanism where psychosine’s toxicity in Krabbe disease involves deregulation of cell signaling not only by disruption of membrane rafts, but also by direct local destabilization and fragmentation of the membrane through microvesiculation. This model of membrane disruption may be fundamental to introduce focal weak points in the myelin sheath, and consequent diffuse demyelination in this leukodystrophy, with possible commonality to other demyelinating disorders.
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spelling pubmed-54397312017-06-06 Psychosine enhances the shedding of membrane microvesicles: Implications in demyelination in Krabbe’s disease D’Auria, Ludovic Reiter, Cory Ward, Emma Moyano, Ana Lis Marshall, Michael S. Nguyen, Duc Scesa, Giuseppe Hauck, Zane van Breemen, Richard Givogri, Maria I. Bongarzone, Ernesto R. PLoS One Research Article In prior studies, our laboratory showed that psychosine accumulates and disrupts lipid rafts in brain membranes of Krabbe’s disease. A model of lipid raft disruption helped explaining psychosine’s effects on several signaling pathways important for oligodendrocyte survival and differentiation but provided more limited insight in how this sphingolipid caused demyelination. Here, we have studied how this cationic inverted coned lipid affects the fluidity, stability and structure of myelin and plasma membranes. Using a combination of cutting-edge imaging techniques in non-myelinating (red blood cell), and myelinating (oligodendrocyte) cell models, we show that psychosine is sufficient to disrupt sphingomyelin-enriched domains, increases the rigidity of localized areas in the plasma membrane, and promotes the shedding of membranous microvesicles. The same physicochemical and structural changes were measured in myelin membranes purified from the mutant mouse Twitcher, a model for Krabbe’s disease. Areas of higher rigidity were measured in Twitcher myelin and correlated with higher levels of psychosine and of myelin microvesiculation. These results expand our previous analyses and support, for the first time a pathogenic mechanism where psychosine’s toxicity in Krabbe disease involves deregulation of cell signaling not only by disruption of membrane rafts, but also by direct local destabilization and fragmentation of the membrane through microvesiculation. This model of membrane disruption may be fundamental to introduce focal weak points in the myelin sheath, and consequent diffuse demyelination in this leukodystrophy, with possible commonality to other demyelinating disorders. Public Library of Science 2017-05-22 /pmc/articles/PMC5439731/ /pubmed/28531236 http://dx.doi.org/10.1371/journal.pone.0178103 Text en © 2017 D’Auria et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
D’Auria, Ludovic
Reiter, Cory
Ward, Emma
Moyano, Ana Lis
Marshall, Michael S.
Nguyen, Duc
Scesa, Giuseppe
Hauck, Zane
van Breemen, Richard
Givogri, Maria I.
Bongarzone, Ernesto R.
Psychosine enhances the shedding of membrane microvesicles: Implications in demyelination in Krabbe’s disease
title Psychosine enhances the shedding of membrane microvesicles: Implications in demyelination in Krabbe’s disease
title_full Psychosine enhances the shedding of membrane microvesicles: Implications in demyelination in Krabbe’s disease
title_fullStr Psychosine enhances the shedding of membrane microvesicles: Implications in demyelination in Krabbe’s disease
title_full_unstemmed Psychosine enhances the shedding of membrane microvesicles: Implications in demyelination in Krabbe’s disease
title_short Psychosine enhances the shedding of membrane microvesicles: Implications in demyelination in Krabbe’s disease
title_sort psychosine enhances the shedding of membrane microvesicles: implications in demyelination in krabbe’s disease
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5439731/
https://www.ncbi.nlm.nih.gov/pubmed/28531236
http://dx.doi.org/10.1371/journal.pone.0178103
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