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Characterization and Isolation of Mouse Primary Microglia by Density Gradient Centrifugation
Published on: February 16, 2018
Microglia and neuroprotection: from in vitro studies to therapeutic applications
Elisabetta Polazzi1, Barbara Monti
1Department of Biology, University of Bologna, Italy.
Abstract:
Microglia are the main immune cells in the brain, playing a role in both physiological and pathological conditions. Microglial involvement in neurodegenerative diseases is well-established, being microglial activation and neuroinflammation common features of these neuropathologies. Microglial activation has been considered harmful for neurons, but inflammatory state is not only associated with neurotoxic consequences, but also with neuroprotective effects, such as phagocytosis of dead neurons and clearance of debris. This brought to the idea of protective autoimmunity in the brain and to devise immunomodulatory therapies, aimed to specifically increase neuroprotective aspects of microglia. During the last years, several data supported the intrinsic neuroprotective function of microglia through the release of neuroprotective molecules. These data led to change the traditional view of microglia in neurodegenerative diseases: from the idea that these cells play an detrimental role for neurons due to a gain of their inflammatory function, to the proposal of a loss of microglial neuroprotective function as a causing factor in neuropathologies. This "microglial dysfunction hypothesis" points at the importance of understanding the mechanisms of microglial-mediated neuroprotection to develop new therapies for neurodegenerative diseases. In vitro models are very important to clarify the basic mechanisms of microglial-mediated neuroprotection, mainly for the identification of potentially effective neuroprotective molecules, and to design new approaches in a gene therapy set-up. Microglia could act as both a target and a vehicle for CNS gene delivery of neuroprotective factors, endogenously produced by microglia in physiological conditions, thus strengthening the microglial neuroprotective phenotype, even in a pathological situation.
Insights
Microglia, the brain's immune cells, can protect neurons by clearing debris and releasing beneficial molecules. Understanding their neuroprotective functions is key to developing new therapies for neurodegenerative diseases.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglia are central nervous system immune cells involved in brain health and disease.
- Microglial activation in neurodegenerative diseases has traditionally been viewed as detrimental.
- Emerging evidence highlights microglia's intrinsic neuroprotective roles.
Purpose of the Study:
- To re-evaluate the role of microglia in neurodegenerative diseases.
- To explore the neuroprotective functions of microglia.
- To investigate the potential of targeting microglial neuroprotection for therapeutic strategies.
Main Methods:
- Review of existing literature on microglial function in neurodegeneration.
- Analysis of data supporting intrinsic microglial neuroprotection.
- Discussion of in vitro models for studying microglial mechanisms.
Main Results:
- Microglia exhibit both neurotoxic and neuroprotective functions.
- Neuroprotection by microglia involves phagocytosis and release of beneficial molecules.
- A shift in perspective suggests microglial dysfunction, not just activation, contributes to neuropathology.
Conclusions:
- The "microglial dysfunction hypothesis" reframes microglia's role in neurodegeneration.
- Understanding microglial neuroprotection is crucial for developing novel therapies.
- In vitro models and gene therapy offer promising avenues for enhancing microglial neuroprotective phenotypes.

