Journal Article DZNE-2026-00686

http://join2-wiki.gsi.de/foswiki/pub/Main/Artwork/join2_logo100x88.png
Multiple adhesion molecules act together in oligodendrocyte-mediated axonal selection and myelin formation.

 ;  ;  ;  ;  ;  ;

2026
PLoS Lawrence, KS

PLoS biology 24(6), e3003854 () [10.1371/journal.pbio.3003854]

This record in other databases:    

Please use a persistent id in citations: doi:

Abstract: Rapid information processing in complex organisms depends on myelin, which consists of a multilamellar membrane that tightly adheres to the axonal surface along the internode and at paranodal loops, where specialized adhesion proteins maintain axon-glial contact. Because the decision to myelinate an axon profoundly influences neuronal transmission, this process must be precisely regulated. Yet, it remains unclear which specific molecules enable oligodendrocytes to select appropriate axonal substrates for myelination. Several key myelin-associated adhesion systems have been identified, including Myelin-associated glycoprotein (Mag) and Cell Adhesion Molecule 4 (Cadm4) at the internode, as well as Contactin1 (Cntn1) at the paranode; however, these three adhesion molecules have not previously been deleted in combination. Here, using zebrafish, we systematically disrupted all three myelin-associated adhesion systems. We found that the combined loss of Mag, Cadm4, and Cntn1 severely impairs myelin initiation and destabilizes the few nascent sheaths that do form, resulting in a phenotype characterized by oligodendrocytes exhibiting membrane 'stubs'. The failure to form myelin triggered cell death of early myelinating oligodendrocytes and resulted in profound hypomyelination. Our findings reveal that axonal target selection and myelin formation depend on a redundant set of adhesion molecules, and that their simultaneous loss largely abolishes myelin biogenesis.

Keyword(s): Animals (MeSH) ; Oligodendroglia: metabolism (MeSH) ; Myelin Sheath: metabolism (MeSH) ; Axons: metabolism (MeSH) ; Axons: physiology (MeSH) ; Zebrafish: metabolism (MeSH) ; Myelin-Associated Glycoprotein: metabolism (MeSH) ; Myelin-Associated Glycoprotein: genetics (MeSH) ; Cell Adhesion Molecules: metabolism (MeSH) ; Cell Adhesion Molecules: genetics (MeSH) ; Zebrafish Proteins: metabolism (MeSH) ; Zebrafish Proteins: genetics (MeSH) ; Contactin 1: metabolism (MeSH) ; Contactin 1: genetics (MeSH) ; Myelin-Associated Glycoprotein ; Cell Adhesion Molecules ; Zebrafish Proteins ; Contactin 1

Classification:

Contributing Institute(s):
  1. Molecular Neurobiology (AG Simons)
  2. Neuronal Cell Biology (AG Misgeld)
Research Program(s):
  1. 351 - Brain Function (POF4-351) (POF4-351)

Appears in the scientific report 2026
Database coverage:
Medline ; Creative Commons Attribution CC BY 4.0 ; DOAJ ; OpenAccess ; Article Processing Charges ; BIOSIS Previews ; Biological Abstracts ; Clarivate Analytics Master Journal List ; Current Contents - Agriculture, Biology and Environmental Sciences ; Current Contents - Life Sciences ; DOAJ Seal ; Ebsco Academic Search ; Essential Science Indicators ; Fees ; IF >= 5 ; JCR ; PubMed Central ; SCOPUS ; Science Citation Index Expanded ; Web of Science Core Collection ; Zoological Record
Click to display QR Code for this record

The record appears in these collections:
Document types > Articles > Journal Article
Institute Collections > M DZNE > M DZNE-AG Misgeld
Institute Collections > M DZNE > M DZNE-AG Simons
Full Text Collection
Public records
Publications Database

 Record created 2026-07-07, last modified 2026-07-10