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Updated: Jan 25, 2026

Comprehensive Autopsy Program for Individuals with Multiple Sclerosis
Published on: July 19, 2019
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.
Abstract:
The heterogeneity of multiple sclerosis is reflected by dynamic changes of different lesion types in the brain white matter (WM). To identify potential drivers of this process, we RNA-sequenced 73 WM areas from patients with progressive MS (PMS) and 25 control WM. Lesion endophenotypes were described by a computational systems medicine analysis combined with RNAscope, immunohistochemistry, and immunofluorescence. The signature of the normal-appearing WM (NAWM) was more similar to control WM than to lesions: one of the six upregulated genes in NAWM was CD26/DPP4 expressed by microglia. Chronic active lesions that become prominent in PMS had a signature that were different from all other lesion types, and were differentiated from them by two clusters of 62 differentially expressed genes (DEGs). An upcoming MS biomarker, CHI3L1 was among the top ten upregulated genes in chronic active lesions expressed by astrocytes in the rim. TGFβ-R2 was the central hub in a remyelination-related protein interaction network, and was expressed there by astrocytes. We used de novo networks enriched by unique DEGs to determine lesion-specific pathway regulation, i.e. cellular trafficking and activation in active lesions; healing and immune responses in remyelinating lesions characterized by the most heterogeneous immunoglobulin gene expression; coagulation and ion balance in inactive lesions; and metabolic changes in chronic active lesions. Because we found inverse differential regulation of particular genes among different lesion types, our data emphasize that omics related to MS lesions should be interpreted in the context of lesion pathology. Our data indicate that the impact of molecular pathways is substantially changing as different lesions develop. This was also reflected by the high number of unique DEGs that were more common than shared signatures. A special microglia subset characterized by CD26 may play a role in early lesion development, while astrocyte-derived TGFβ-R2 and TGFβ pathways may be drivers of repair in contrast to chronic tissue damage. The highly specific mechanistic signature of chronic active lesions indicates that as these lesions develop in PMS, the molecular changes are substantially skewed: the unique mitochondrial/metabolic changes and specific downregulation of molecules involved in tissue repair may reflect a stage of exhaustion.
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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