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Characterization and Isolation of Mouse Primary Microglia by Density Gradient Centrifugation
Published on: February 16, 2018
Can we switch microglia's phenotype to foster neuroprotection? Focus on multiple sclerosis
Debora Giunti1, Benedetta Parodi, Christian Cordano
1Department of Neurosciences, Ophthalmology, Genetics, Rehabilitation and Child Health, University of Genoa, Genoa, Italy.
Abstract:
Microglia cells, the resident innate immune cells in the brain, are highly active, extending and retracting highly motile processes through which they continuously survey their microenvironment for 'danger signals' and interact dynamically with surrounding cells. Upon sensing changes in their central nervous system microenvironment, microglia become activated, undergoing morphological and functional changes. Microglia activation is not an 'all-or-none' process, but rather a continuum depending on encountered stimuli, which is expressed through a spectrum of molecular and functional phenotypes ranging from so-called 'classically activated', with a highly pro-inflammatory profile, to 'alternatively activated' associated with a beneficial, less inflammatory, neuroprotective profile. Microglia activation has been demonstrated in most neurological diseases of diverse aetiology and has been implicated as a contributor to neurodegeneration. The possibility to promote microglia's neuroprotective phenotype has therefore become a therapeutic goal. We have focused our discussion on the role of microglia in multiple sclerosis, a prototype of inflammatory, demyelinating, neurodegenerative disease, and on the effect of currently approved or on-trial anti-inflammatory therapeutic strategies that might mediate neuroprotection at least in part through their effect on microglia by modifying their behaviour via a switch of their functional phenotype from a detrimental to a protective one. In addition to pharmaceutical approaches, such as treatment with glatiramer acetate, interferon-β, fingolimod or dimethyl fumarate, we address the alternative therapeutic approach of treatment with mesenchymal stem cells and their potential role in neuroprotection through their 'calming' effect on microglia.
Insights
Microglia, the brain's immune cells, can be shifted from a harmful to a protective state. Targeting microglia offers a therapeutic strategy for neurological diseases like multiple sclerosis.
Area of Science:
- Neuroimmunology
- Cellular Biology
- Neuroinflammation
Background:
- Microglia are the brain's resident immune cells, constantly surveying the environment.
- Microglia activation is a spectrum, ranging from pro-inflammatory to neuroprotective phenotypes.
- Microglia play a role in neurodegeneration and are implicated in multiple sclerosis.
Purpose of the Study:
- To discuss the role of microglia in multiple sclerosis.
- To explore therapeutic strategies that modulate microglia phenotypes for neuroprotection.
Main Methods:
- Review of current literature on microglia activation in neurological diseases.
- Analysis of pharmaceutical treatments (glatiramer acetate, interferon-β, fingolimod, dimethyl fumarate) and their effects on microglia.
- Evaluation of mesenchymal stem cell therapy for its impact on microglia.
Main Results:
- Microglia activation is a dynamic continuum, not an 'all-or-none' response.
- Therapeutic strategies aim to shift microglia towards a beneficial, less inflammatory phenotype.
- Both pharmaceutical and cell-based therapies show potential in modulating microglia for neuroprotection.
Conclusions:
- Modulating microglia phenotype is a promising therapeutic avenue for multiple sclerosis.
- Pharmaceuticals and mesenchymal stem cells may offer neuroprotection by influencing microglia behavior.
- Targeting microglia offers a novel strategy for treating neurodegenerative diseases.

