Irrespective of Plaque Activity, Multiple Sclerosis Brain Periplaques Exhibit Alterations of Myelin Genes and a

Serge Nataf1,2,3, Marine Guillen1,2, Laurent Pays1,2,3

  • 1Bank of Tissues and Cells, Hospices Civils de Lyon, Hôpital Edouard Herriot, Place d'Arsonval, F-69003 Lyon, France.

Insights

Silent progression in multiple sclerosis (MS) involves demyelination independent of active lesions. Transforming growth factor beta 2 (TGFB2) and altered oligodendrocyte gene expression in brain and spinal cord periplaques may drive this chronic tissue remodeling.

Area of Science:

  • Neuroscience
  • Immunology
  • Genetics

Background:

  • Multiple sclerosis (MS) exhibits silent neurological function deterioration despite absent radiological activity.
  • This progression may involve mechanisms independent of active demyelinating lesions.
  • Previous work identified TGF-beta signature and reduced NDRG1 in spinal cord periplaques.

Purpose of the Study:

  • To investigate molecular mechanisms of silent demyelination in MS brain periplaques.
  • To identify key molecular players and pathways involved in periplaque pathology.
  • To link molecular findings to the silent progression observed in MS.

Main Methods:

  • Re-analysis of a published RNA expression dataset of brain periplaques and normal white matter.
  • Bioinformatic analysis to identify differentially expressed genes and molecular signatures.
  • Proteomic data survey and protein-protein interaction network construction.

Main Results:

  • Brain periplaques show a TGF-beta molecular signature, increased TGFB2, and decreased NDRG1 and MAG mRNA expression.
  • Protein-protein interaction networks suggest TGFB2 down-regulates NDRG1 and MAG.
  • NDRG1 interaction networks are enriched in RNA-binding proteins, including HNRNPs, involved in MAG post-transcriptional regulation.

Conclusions:

  • Brain and spinal cord periplaques exhibit chronic tissue remodeling with altered oligodendrocyte function.
  • TGFB2 signaling may drive periplaque-associated partial demyelination.
  • These findings support the role of periplaque demyelination in the silent progression of MS.