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Schwann cells, but not Oligodendrocytes, Depend Strictly on Dynamin 2 Function

Myelination requires extensive plasma membrane rearrangements, implying that molecules controlling membrane dynamics play prominent roles. The large GTPase dynamin 2 (DNM2) is a well-known regulator of membrane remodeling, membrane fission, and vesicular trafficking. Here, we genetically ablated Dnm...

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Autores principales: Gerber, Daniel, Ghidinelli, Monica, Tinelli, Elisa, Somandin, Christian, Gerber, Joanne, Pereira, Jorge A, Ommer, Andrea, Figlia, Gianluca, Miehe, Michaela, Nägeli, Lukas G, Suter, Vanessa, Tadini, Valentina, Sidiropoulos, Páris NM, Wessig, Carsten, Toyka, Klaus V, Suter, Ueli
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6335055/
https://www.ncbi.nlm.nih.gov/pubmed/30648534
http://dx.doi.org/10.7554/eLife.42404
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author Gerber, Daniel
Ghidinelli, Monica
Tinelli, Elisa
Somandin, Christian
Gerber, Joanne
Pereira, Jorge A
Ommer, Andrea
Figlia, Gianluca
Miehe, Michaela
Nägeli, Lukas G
Suter, Vanessa
Tadini, Valentina
Sidiropoulos, Páris NM
Wessig, Carsten
Toyka, Klaus V
Suter, Ueli
author_facet Gerber, Daniel
Ghidinelli, Monica
Tinelli, Elisa
Somandin, Christian
Gerber, Joanne
Pereira, Jorge A
Ommer, Andrea
Figlia, Gianluca
Miehe, Michaela
Nägeli, Lukas G
Suter, Vanessa
Tadini, Valentina
Sidiropoulos, Páris NM
Wessig, Carsten
Toyka, Klaus V
Suter, Ueli
author_sort Gerber, Daniel
collection PubMed
description Myelination requires extensive plasma membrane rearrangements, implying that molecules controlling membrane dynamics play prominent roles. The large GTPase dynamin 2 (DNM2) is a well-known regulator of membrane remodeling, membrane fission, and vesicular trafficking. Here, we genetically ablated Dnm2 in Schwann cells (SCs) and in oligodendrocytes of mice. Dnm2 deletion in developing SCs resulted in severely impaired axonal sorting and myelination onset. Induced Dnm2 deletion in adult SCs caused a rapidly-developing peripheral neuropathy with abundant demyelination. In both experimental settings, mutant SCs underwent prominent cell death, at least partially due to cytokinesis failure. Strikingly, when Dnm2 was deleted in adult SCs, non-recombined SCs still expressing DNM2 were able to remyelinate fast and efficiently, accompanied by neuropathy remission. These findings reveal a remarkable self-healing capability of peripheral nerves that are affected by SC loss. In the central nervous system, however, we found no major defects upon Dnm2 deletion in oligodendrocytes.
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spelling pubmed-63350552019-01-24 Schwann cells, but not Oligodendrocytes, Depend Strictly on Dynamin 2 Function Gerber, Daniel Ghidinelli, Monica Tinelli, Elisa Somandin, Christian Gerber, Joanne Pereira, Jorge A Ommer, Andrea Figlia, Gianluca Miehe, Michaela Nägeli, Lukas G Suter, Vanessa Tadini, Valentina Sidiropoulos, Páris NM Wessig, Carsten Toyka, Klaus V Suter, Ueli eLife Neuroscience Myelination requires extensive plasma membrane rearrangements, implying that molecules controlling membrane dynamics play prominent roles. The large GTPase dynamin 2 (DNM2) is a well-known regulator of membrane remodeling, membrane fission, and vesicular trafficking. Here, we genetically ablated Dnm2 in Schwann cells (SCs) and in oligodendrocytes of mice. Dnm2 deletion in developing SCs resulted in severely impaired axonal sorting and myelination onset. Induced Dnm2 deletion in adult SCs caused a rapidly-developing peripheral neuropathy with abundant demyelination. In both experimental settings, mutant SCs underwent prominent cell death, at least partially due to cytokinesis failure. Strikingly, when Dnm2 was deleted in adult SCs, non-recombined SCs still expressing DNM2 were able to remyelinate fast and efficiently, accompanied by neuropathy remission. These findings reveal a remarkable self-healing capability of peripheral nerves that are affected by SC loss. In the central nervous system, however, we found no major defects upon Dnm2 deletion in oligodendrocytes. eLife Sciences Publications, Ltd 2019-01-16 /pmc/articles/PMC6335055/ /pubmed/30648534 http://dx.doi.org/10.7554/eLife.42404 Text en © 2019, Gerber et al http://creativecommons.org/licenses/by/4.0/ 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
Gerber, Daniel
Ghidinelli, Monica
Tinelli, Elisa
Somandin, Christian
Gerber, Joanne
Pereira, Jorge A
Ommer, Andrea
Figlia, Gianluca
Miehe, Michaela
Nägeli, Lukas G
Suter, Vanessa
Tadini, Valentina
Sidiropoulos, Páris NM
Wessig, Carsten
Toyka, Klaus V
Suter, Ueli
Schwann cells, but not Oligodendrocytes, Depend Strictly on Dynamin 2 Function
title Schwann cells, but not Oligodendrocytes, Depend Strictly on Dynamin 2 Function
title_full Schwann cells, but not Oligodendrocytes, Depend Strictly on Dynamin 2 Function
title_fullStr Schwann cells, but not Oligodendrocytes, Depend Strictly on Dynamin 2 Function
title_full_unstemmed Schwann cells, but not Oligodendrocytes, Depend Strictly on Dynamin 2 Function
title_short Schwann cells, but not Oligodendrocytes, Depend Strictly on Dynamin 2 Function
title_sort schwann cells, but not oligodendrocytes, depend strictly on dynamin 2 function
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6335055/
https://www.ncbi.nlm.nih.gov/pubmed/30648534
http://dx.doi.org/10.7554/eLife.42404
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