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Microglia depletion as a therapeutic strategy: friend or foe in multiple sclerosis models?
Victoria Sofia Berenice Wies Mancini1, Anabella Ayelen Di Pietro1, Laura Andrea Pasquini1
1Universidad de Buenos Aires, Facultad de Farmacia y Bioquímica, Departamento de Química Biológica, Cátedra de Química Biológica Patológica; Universidad de Buenos Aires, Consejo Nacional de Investigaciones Científicas y Técnicas, Instituto de Química y Fisicoquímica Biológicas Prof. Dr. Alejandro C. Paladini, Facultad de Farmacia y Bioquímica, Buenos Aires, Argentina.
Abstract:
Multiple sclerosis is a chronic central nervous system demyelinating disease whose onset and progression are driven by a combination of immune dysregulation, genetic predisposition, and environmental factors. The activation of microglia and astrocytes is a key player in multiple sclerosis immunopathology, playing specific roles associated with anatomical location and phase of the disease and controlling demyelination and neurodegeneration. Even though reactive microglia can damage tissue and heighten deleterious effects and neurodegeneration, activated microglia also perform neuroprotective functions such as debris phagocytosis and growth factor secretion. Astrocytes can be activated into pro-inflammatory phenotype A1 through a mechanism mediated by activated neuroinflammatory microglia, which could also mediate neurodegeneration. This A1 phenotype inhibits oligodendrocyte proliferation and differentiation and is toxic to both oligodendrocytes and neurons. However, astroglial activation into phenotype A2 may also take place in response to neurodegeneration and as a protective mechanism. A variety of animal models mimicking specific multiple sclerosis features and the associated pathophysiological processes have helped establish the cascades of events that lead to the initiation, progression, and resolution of the disease. The colony-stimulating factor-1 receptor is expressed by myeloid lineage cells such as peripheral monocytes and macrophages and central nervous system microglia. Importantly, as microglia development and survival critically rely on colony-stimulating factor-1 receptor signaling, colony-stimulating factor-1 receptor inhibition can almost completely eliminate microglia from the brain. In this context, the present review discusses the impact of microglial depletion through colony-stimulating factor-1 receptor inhibition on demyelination, neurodegeneration, astroglial activation, and behavior in different multiple sclerosis models, highlighting the diversity of microglial effects on the progression of demyelinating diseases and the strengths and weaknesses of microglial modulation in therapy design.
Insights
In multiple sclerosis, microglia depletion via colony-stimulating factor-1 receptor inhibition impacts demyelination and neurodegeneration. This approach reveals diverse microglial roles and therapeutic potential in central nervous system diseases.
Area of Science:
- Neuroscience
- Immunology
- Pathology
Background:
- Multiple sclerosis (MS) is a chronic central nervous system (CNS) demyelinating disease.
- MS pathogenesis involves immune dysregulation, genetics, and environmental factors.
- Microglia and astrocyte activation are central to MS immunopathology, influencing demyelination and neurodegeneration.
Purpose of the Study:
- To review the impact of microglial depletion using colony-stimulating factor-1 receptor (CSF1R) inhibition.
- To analyze effects on demyelination, neurodegeneration, astroglial activation, and behavior in MS models.
- To highlight the dual role of microglia and therapeutic implications of their modulation.
Main Methods:
- Review of animal models of multiple sclerosis.
- Analysis of CSF1R signaling in microglia development and survival.
- Examination of studies involving CSF1R inhibition for microglial depletion.
Main Results:
- CSF1R inhibition can significantly reduce microglia in the CNS.
- Microglial depletion affects demyelination, neurodegeneration, and astroglial phenotypes (A1/A2).
- Microglia exhibit both detrimental and protective functions in MS models.
Conclusions:
- Microglial depletion strategies warrant careful consideration due to the complex roles of microglia.
- Understanding microglial diversity is crucial for designing effective MS therapies.
- Targeting CSF1R offers a potential avenue for modulating microglial activity in demyelinating diseases.

