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Reorganization of Lipid Diffusion by Myelin Basic Protein as Revealed by STED Nanoscopy

Myelin is a multilayered membrane that ensheathes axonal fibers in the vertebrate nervous system, allowing fast propagation of nerve action potentials. It contains densely packed lipids, lacks an actin-based cytocortex, and requires myelin basic protein (MBP) as its major structural component. This...

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Autores principales: Steshenko, Olena, Andrade, Débora M., Honigmann, Alf, Mueller, Veronika, Schneider, Falk, Sezgin, Erdinc, Hell, Stefan W., Simons, Mikael, Eggeling, Christian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Biophysical Society 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4906378/
https://www.ncbi.nlm.nih.gov/pubmed/27276262
http://dx.doi.org/10.1016/j.bpj.2016.04.047
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author Steshenko, Olena
Andrade, Débora M.
Honigmann, Alf
Mueller, Veronika
Schneider, Falk
Sezgin, Erdinc
Hell, Stefan W.
Simons, Mikael
Eggeling, Christian
author_facet Steshenko, Olena
Andrade, Débora M.
Honigmann, Alf
Mueller, Veronika
Schneider, Falk
Sezgin, Erdinc
Hell, Stefan W.
Simons, Mikael
Eggeling, Christian
author_sort Steshenko, Olena
collection PubMed
description Myelin is a multilayered membrane that ensheathes axonal fibers in the vertebrate nervous system, allowing fast propagation of nerve action potentials. It contains densely packed lipids, lacks an actin-based cytocortex, and requires myelin basic protein (MBP) as its major structural component. This protein is the basic constituent of the proteinaceous meshwork that is localized between adjacent cytoplasmic membranes of the myelin sheath. Yet, it is not clear how MBP influences the organization and dynamics of the lipid constituents of myelin. Here, we used optical stimulated emission depletion super-resolution microscopy in combination with fluorescence correlation spectroscopy to assess the characteristics of diffusion of different fluorescent lipid analogs in myelin membrane sheets of cultured oligodendrocytes and in micrometer-sized domains that were induced by MBP in live epithelial PtK2 cells. Lipid diffusion was significantly faster and less anomalous both in oligodendrocytes and inside the MBP-rich domains of PtK2 cells compared with undisturbed live PtK2 cells. Our data show that MBP reorganizes lipid diffusion, possibly by preventing the buildup of an actin-based cytocortex and by preventing most membrane proteins from entering the myelin sheath region. Yet, in contrast to myelin sheets in oligodendrocytes, the MBP-induced domains in epithelial PtK2 cells demonstrate no change in lipid order, indicating that segregation of long-chain lipids into myelin sheets is a process specific to oligodendrocytes.
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spelling pubmed-49063782017-06-07 Reorganization of Lipid Diffusion by Myelin Basic Protein as Revealed by STED Nanoscopy Steshenko, Olena Andrade, Débora M. Honigmann, Alf Mueller, Veronika Schneider, Falk Sezgin, Erdinc Hell, Stefan W. Simons, Mikael Eggeling, Christian Biophys J Membranes Myelin is a multilayered membrane that ensheathes axonal fibers in the vertebrate nervous system, allowing fast propagation of nerve action potentials. It contains densely packed lipids, lacks an actin-based cytocortex, and requires myelin basic protein (MBP) as its major structural component. This protein is the basic constituent of the proteinaceous meshwork that is localized between adjacent cytoplasmic membranes of the myelin sheath. Yet, it is not clear how MBP influences the organization and dynamics of the lipid constituents of myelin. Here, we used optical stimulated emission depletion super-resolution microscopy in combination with fluorescence correlation spectroscopy to assess the characteristics of diffusion of different fluorescent lipid analogs in myelin membrane sheets of cultured oligodendrocytes and in micrometer-sized domains that were induced by MBP in live epithelial PtK2 cells. Lipid diffusion was significantly faster and less anomalous both in oligodendrocytes and inside the MBP-rich domains of PtK2 cells compared with undisturbed live PtK2 cells. Our data show that MBP reorganizes lipid diffusion, possibly by preventing the buildup of an actin-based cytocortex and by preventing most membrane proteins from entering the myelin sheath region. Yet, in contrast to myelin sheets in oligodendrocytes, the MBP-induced domains in epithelial PtK2 cells demonstrate no change in lipid order, indicating that segregation of long-chain lipids into myelin sheets is a process specific to oligodendrocytes. The Biophysical Society 2016-06-07 2016-06-07 /pmc/articles/PMC4906378/ /pubmed/27276262 http://dx.doi.org/10.1016/j.bpj.2016.04.047 Text en © 2016 Biophysical Society. http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Membranes
Steshenko, Olena
Andrade, Débora M.
Honigmann, Alf
Mueller, Veronika
Schneider, Falk
Sezgin, Erdinc
Hell, Stefan W.
Simons, Mikael
Eggeling, Christian
Reorganization of Lipid Diffusion by Myelin Basic Protein as Revealed by STED Nanoscopy
title Reorganization of Lipid Diffusion by Myelin Basic Protein as Revealed by STED Nanoscopy
title_full Reorganization of Lipid Diffusion by Myelin Basic Protein as Revealed by STED Nanoscopy
title_fullStr Reorganization of Lipid Diffusion by Myelin Basic Protein as Revealed by STED Nanoscopy
title_full_unstemmed Reorganization of Lipid Diffusion by Myelin Basic Protein as Revealed by STED Nanoscopy
title_short Reorganization of Lipid Diffusion by Myelin Basic Protein as Revealed by STED Nanoscopy
title_sort reorganization of lipid diffusion by myelin basic protein as revealed by sted nanoscopy
topic Membranes
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4906378/
https://www.ncbi.nlm.nih.gov/pubmed/27276262
http://dx.doi.org/10.1016/j.bpj.2016.04.047
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