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Rat Model of Widespread Cerebral Cortical Demyelination Induced by an Intracerebral Injection of Pro-Inflammatory Cytokines
Published on: September 21, 2021
Genetic models of cleavage-reduced and soluble TREM2 reveal distinct effects on myelination and microglia function in
Nicolau Beckmann1, Anna Neuhaus2, Stefan Zurbruegg2
1Musculoskeletal Diseases Area, Novartis Institutes for BioMedical Research, Novartis Pharma AG, CH-4002, Basel, Switzerland.
Abstract:
Triggering receptor expressed on myeloid cells 2 (TREM2) is a cell-surface immunoreceptor expressed on microglia, osteoclasts, dendritic cells and macrophages. Heterozygous loss-of-function mutations in TREM2, including mutations enhancing shedding form the cell surface, have been associated with myelin/neuronal loss and neuroinflammation in neurodegenerative diseases, such as Alzheimer`s disease and Frontotemporal Dementia. Using the cuprizone model, we investigated the involvement of soluble and cleavage-reduced TREM2 on central myelination processes in cleavage-reduced (TREM2-IPD), soluble-only (TREM2-sol), knockout (TREM2-KO) and wild-type (WT) mice. The TREM2-sol mouse is a new model with selective elimination of plasma membrane TREM2 and a reduced expression of soluble TREM2. In the acute cuprizone model demyelination and remyelination events were reflected by a T2-weighted signal intensity change in magnetic resonance imaging (MRI), most prominently in the external capsule (EC). In contrast to WT and TREM2-IPD, TREM2-sol and TREM2-KO showed an additional increase in MRI signal during the recovery phase. Histological analyses of TREM2-IPD animals revealed no recovery of neuroinflammation as well as of the lysosomal marker LAMP-1 and displayed enhanced cytokine/chemokine levels in the brain. TREM2-sol and, to a much lesser extent, TREM2-KO, however, despite presenting reduced levels of some cytokines/chemokines, showed persistent microgliosis and astrocytosis during recovery, with both homeostatic (TMEM119) as well as activated (LAMP-1) microglia markers increased. This was accompanied, specifically in the EC, by no myelin recovery, with appearance of myelin debris and axonal pathology, while oligodendrocytes recovered. In the chronic model consisting of 12-week cuprizone administration followed by 3-week recovery TREM2-IPD displayed sustained microgliosis and enhanced remyelination in the recovery phase. Taken together, our data suggest that sustained microglia activation led to increased remyelination, whereas microglia without plasma membrane TREM2 and only soluble TREM2 had reduced phagocytic activity despite efficient lysosomal function, as observed in bone marrow-derived macrophages, leading to a dysfunctional phenotype with improper myelin debris removal, lack of remyelination and axonal pathology following cuprizone intoxication.
Insights
Triggering receptor expressed on myeloid cells 2 (TREM2) mutations impact myelin repair in neurodegenerative diseases. Soluble TREM2 impairs phagocytosis and myelin debris clearance, hindering remyelination and causing axonal damage.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Triggering receptor expressed on myeloid cells 2 (TREM2) is crucial for microglial function in the central nervous system.
- Loss-of-function TREM2 mutations are linked to neuroinflammation and myelin/neuronal loss in neurodegenerative diseases like Alzheimer's disease.
- Investigating TREM2's role in myelination is vital for understanding and treating these conditions.
Purpose of the Study:
- To investigate the role of soluble and cleavage-reduced TREM2 in central nervous system myelination using novel mouse models.
- To analyze the impact of TREM2 variants on demyelination, remyelination, and neuroinflammation in the cuprizone model.
- To elucidate the functional consequences of altered TREM2 shedding on microglial phagocytosis and debris clearance.
Main Methods:
- Utilized the cuprizone model of demyelination/remyelination in wild-type, TREM2-IPD, TREM2-sol, and TREM2-KO mice.
- Employed magnetic resonance imaging (MRI) to assess demyelination and remyelination via T2-weighted signal intensity changes.
- Conducted histological analyses to evaluate neuroinflammation, microgliosis, astrocytosis, myelin integrity, and oligodendrocyte recovery.
Main Results:
- TREM2-sol and TREM2-KO mice showed impaired myelin recovery and increased axonal pathology during the recovery phase.
- TREM2-sol mice exhibited persistent microgliosis and astrocytosis without myelin recovery, despite reduced inflammatory markers.
- TREM2-IPD mice displayed sustained microgliosis and enhanced remyelination in a chronic model, suggesting sustained microglial activation promotes repair.
Conclusions:
- Microglia lacking plasma membrane TREM2 but retaining soluble TREM2 show reduced phagocytic activity and impaired myelin debris removal.
- This dysfunctional phenotype, characterized by a lack of remyelination and axonal pathology, highlights the importance of membrane-bound TREM2 for myelin repair.
- Sustained microglial activation, as seen in TREM2-IPD, may be beneficial for remyelination, contrasting with the detrimental effects of soluble TREM2 dominance.
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