Unique RNA signature of different lesion types in the brain white matter in progressive multiple sclerosis

Maria L Elkjaer1,2,3, Tobias Frisch4, Richard Reynolds5

  • 1Department of Neurology, Odense University Hospital, J.B. Winslowsvej 4, DK-5000, Odense, Denmark.

Insights

This study reveals distinct molecular signatures in multiple sclerosis (MS) brain lesions, identifying CD26 in microglia and TGFβ-R2 in astrocytes as key players in lesion development and repair. Understanding these pathways is crucial for MS progression insights.

Area of Science:

  • Neuroimmunology
  • Systems Biology
  • Genomics

Background:

  • Multiple sclerosis (MS) is characterized by heterogeneous white matter (WM) lesions.
  • Understanding the molecular drivers of lesion heterogeneity is critical for developing effective MS therapies.

Purpose of the Study:

  • To identify molecular signatures and pathway regulation specific to different MS lesion types.
  • To investigate the roles of microglia and astrocytes in MS lesion pathogenesis and repair.

Main Methods:

  • RNA sequencing of 73 progressive MS (PMS) WM areas and 25 control WM.
  • Computational systems medicine analysis combined with advanced histological techniques (RNAscope, IHC, IF).
  • De novo network analysis to identify lesion-specific pathway regulation.

Main Results:

  • Normal-appearing WM (NAWM) molecular signature is closer to control WM than to lesions, with CD26/DPP4 (a potential early driver) upregulated in microglia.
  • Chronic active lesions in PMS exhibit a unique molecular signature, distinct from other lesion types, with CHI3L1 (a biomarker) and metabolic changes prominent.
  • Astrocyte-derived TGFβ-R2 is identified as a central hub in remyelination networks, contrasting with chronic tissue damage pathways.

Conclusions:

  • MS lesion pathology is highly dynamic, with distinct molecular pathways driving different lesion types.
  • Microglia expressing CD26 may be involved in early lesion development.
  • Astrocyte-derived TGFβ-R2 and associated pathways are implicated in repair, while chronic active lesions show signs of molecular exhaustion and impaired repair.

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