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Published on: April 13, 2017
Microglia in Health and Disease: The Strength to Be Diverse and Reactive
Oihane Uriarte Huarte1,2, Lorraine Richart2,3,4, Michel Mittelbronn1,2,3,5
1Luxembourg Centre for Systems Biomedicine (LCSB), University of Luxembourg, Esch-sur-Alzette, Luxembourg.
Abstract:
Microglia are the resident immune effector cells of the central nervous system (CNS) rapidly reacting to any perturbation in order to maintain CNS homeostasis. Although their outstanding reactive properties have been elucidated over the last decades, their heterogeneity in healthy tissue, such as across brain regions, as well as their diversity in the development and progression of brain diseases, are currently opening new avenues to understand the cellular and functional states of microglia subsets in a context-dependent manner. Here, we review the main breakthrough studies that helped in elucidating microglia heterogeneity in the healthy and diseased brain and might pave the way to critical functional screenings of the inferred cellular diversity. We suggest that unraveling the cellular and molecular mechanisms underlying specific functionalities of microglial subpopulations, which may ultimately support or harm the neuronal network in neurodegenerative diseases, or may acquire pro- or anti-tumorigenic phenotypes in brain tumors, will possibly uncover new therapeutic avenues for to date non-curable neurological disorders.
Insights
Microglia, the brain's immune cells, show diverse states in healthy and diseased conditions. Understanding this heterogeneity offers new therapeutic targets for neurological disorders.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglia are the central nervous system (CNS) resident immune cells, crucial for maintaining brain homeostasis.
- Their reactive properties are well-known, but heterogeneity across brain regions and in disease states is increasingly recognized.
Purpose of the Study:
- To review key studies on microglial heterogeneity in healthy and diseased brains.
- To explore the potential of understanding microglial subsets for novel therapeutic strategies.
Main Methods:
- Review of breakthrough studies on microglial heterogeneity.
- Analysis of cellular and functional states of microglial subsets.
Main Results:
- Elucidation of microglial diversity in healthy brain tissue.
- Identification of diverse microglial roles in brain disease development and progression.
Conclusions:
- Unraveling microglial subpopulation functions is key to understanding their impact on neuronal networks in neurodegenerative diseases.
- Targeting specific microglial phenotypes may offer new therapeutic avenues for currently incurable neurological disorders.
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