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Compromised Myelin and Axonal Molecular Organization Following Adult-Onset Sulfatide Depletion

3-O-sulfogalactosylceramide, or sulfatide, is a prominent myelin glycosphingolipid reduced in the normal appearing white matter (NAWM) in Multiple Sclerosis (MS), indicating that sulfatide reduction precedes demyelination. Using a mouse model that is constitutively depleted of sulfatide, we previous...

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Autores principales: Dustin, Elizabeth, Suarez-Pozos, Edna, Stotesberry, Camryn, Qiu, Shulan, Palavicini, Juan Pablo, Han, Xianlin, Dupree, Jeffrey L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10216104/
https://www.ncbi.nlm.nih.gov/pubmed/37239102
http://dx.doi.org/10.3390/biomedicines11051431
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author Dustin, Elizabeth
Suarez-Pozos, Edna
Stotesberry, Camryn
Qiu, Shulan
Palavicini, Juan Pablo
Han, Xianlin
Dupree, Jeffrey L.
author_facet Dustin, Elizabeth
Suarez-Pozos, Edna
Stotesberry, Camryn
Qiu, Shulan
Palavicini, Juan Pablo
Han, Xianlin
Dupree, Jeffrey L.
author_sort Dustin, Elizabeth
collection PubMed
description 3-O-sulfogalactosylceramide, or sulfatide, is a prominent myelin glycosphingolipid reduced in the normal appearing white matter (NAWM) in Multiple Sclerosis (MS), indicating that sulfatide reduction precedes demyelination. Using a mouse model that is constitutively depleted of sulfatide, we previously demonstrated that sulfatide is essential during development for the establishment and maintenance of myelin and axonal integrity and for the stable tethering of certain myelin proteins in the sheath. Here, using an adult-onset depletion model of sulfatide, we employ a combination of ultrastructural, immunohistochemical and biochemical approaches to analyze the consequence of sulfatide depletion from the adult CNS. Our findings show a progressive loss of axonal protein domain organization, which is accompanied by axonal degeneration, with myelin sparing. Similar to our previous work, we also observe differential myelin protein anchoring stabilities that are both sulfatide dependent and independent. Most notably, stable anchoring of neurofascin155, a myelin paranodal protein that binds the axonal paranodal complex of contactin/Caspr1, requires sulfatide. Together, our findings show that adult-onset sulfatide depletion, independent of demyelination, is sufficient to trigger progressive axonal degeneration. Although the pathologic mechanism is unknown, we propose that sulfatide is required for maintaining myelin organization and subsequent myelin–axon interactions and disruptions in these interactions results in compromised axon structure and function.
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spelling pubmed-102161042023-05-27 Compromised Myelin and Axonal Molecular Organization Following Adult-Onset Sulfatide Depletion Dustin, Elizabeth Suarez-Pozos, Edna Stotesberry, Camryn Qiu, Shulan Palavicini, Juan Pablo Han, Xianlin Dupree, Jeffrey L. Biomedicines Article 3-O-sulfogalactosylceramide, or sulfatide, is a prominent myelin glycosphingolipid reduced in the normal appearing white matter (NAWM) in Multiple Sclerosis (MS), indicating that sulfatide reduction precedes demyelination. Using a mouse model that is constitutively depleted of sulfatide, we previously demonstrated that sulfatide is essential during development for the establishment and maintenance of myelin and axonal integrity and for the stable tethering of certain myelin proteins in the sheath. Here, using an adult-onset depletion model of sulfatide, we employ a combination of ultrastructural, immunohistochemical and biochemical approaches to analyze the consequence of sulfatide depletion from the adult CNS. Our findings show a progressive loss of axonal protein domain organization, which is accompanied by axonal degeneration, with myelin sparing. Similar to our previous work, we also observe differential myelin protein anchoring stabilities that are both sulfatide dependent and independent. Most notably, stable anchoring of neurofascin155, a myelin paranodal protein that binds the axonal paranodal complex of contactin/Caspr1, requires sulfatide. Together, our findings show that adult-onset sulfatide depletion, independent of demyelination, is sufficient to trigger progressive axonal degeneration. Although the pathologic mechanism is unknown, we propose that sulfatide is required for maintaining myelin organization and subsequent myelin–axon interactions and disruptions in these interactions results in compromised axon structure and function. MDPI 2023-05-12 /pmc/articles/PMC10216104/ /pubmed/37239102 http://dx.doi.org/10.3390/biomedicines11051431 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Dustin, Elizabeth
Suarez-Pozos, Edna
Stotesberry, Camryn
Qiu, Shulan
Palavicini, Juan Pablo
Han, Xianlin
Dupree, Jeffrey L.
Compromised Myelin and Axonal Molecular Organization Following Adult-Onset Sulfatide Depletion
title Compromised Myelin and Axonal Molecular Organization Following Adult-Onset Sulfatide Depletion
title_full Compromised Myelin and Axonal Molecular Organization Following Adult-Onset Sulfatide Depletion
title_fullStr Compromised Myelin and Axonal Molecular Organization Following Adult-Onset Sulfatide Depletion
title_full_unstemmed Compromised Myelin and Axonal Molecular Organization Following Adult-Onset Sulfatide Depletion
title_short Compromised Myelin and Axonal Molecular Organization Following Adult-Onset Sulfatide Depletion
title_sort compromised myelin and axonal molecular organization following adult-onset sulfatide depletion
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10216104/
https://www.ncbi.nlm.nih.gov/pubmed/37239102
http://dx.doi.org/10.3390/biomedicines11051431
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