Long-term reprogramming of primed microglia after moderate inhibition of CSF1R signaling
Ana León-Rodríguez1,2, Jesús M Grondona1,2, Sonia Marín-Wong1
1Departamento de Biología Celular, Genética y Fisiología, Facultad de Ciencias, Universidad de Málaga, Málaga, Spain.
Abstract:
In acute neuroinflammation, microglia activate transiently, and return to a resting state later on. However, they may retain immune memory of such event, namely priming. Primed microglia are more sensitive to new stimuli and develop exacerbated responses, representing a risk factor for neurological disorders with an inflammatory component. Strategies to control the hyperactivation of microglia are, hence, of great interest. The receptor for colony stimulating factor 1 (CSF1R), expressed in myeloid cells, is essential for microglia viability, so its blockade with specific inhibitors (e.g. PLX5622) results in significant depletion of microglial population. Interestingly, upon inhibitor withdrawal, new naïve microglia repopulate the brain. Depletion-repopulation has been proposed as a strategy to reprogram microglia. However, substantial elimination of microglia is inadvisable in human therapy. To overcome such drawback, we aimed to reprogram long-term primed microglia by CSF1R partial inhibition. Microglial priming was induced in mice by acute neuroinflammation, provoked by intracerebroventricular injection of neuraminidase. After 3-weeks recovery, low-dose PLX5622 treatment was administrated for 12 days, followed by a withdrawal period of 7 weeks. Twelve hours before euthanasia, mice received a peripheral lipopolysaccharide (LPS) immune challenge, and the subsequent microglial inflammatory response was evaluated. PLX5622 provoked a 40%-50% decrease in microglial population, but basal levels were restored 7 weeks later. In the brain regions studied, hippocampus and hypothalamus, LPS induced enhanced microgliosis and inflammatory activation in neuraminidase-injected mice, while PLX5622 treatment prevented these changes. Our results suggest that PLX5622 used at low doses reverts microglial priming and, remarkably, prevents broad microglial depletion.
Insights
Low-dose CSF1R inhibition with PLX5622 partially reduces microglia but prevents depletion. This approach effectively reverts microglial priming, offering a potential therapeutic strategy for neuroinflammatory disorders.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Microglia, the brain's immune cells, can retain an inflammatory memory called priming after neuroinflammation.
- Primed microglia exhibit heightened responses, increasing risk for neurological diseases.
- Current strategies like full colony stimulating factor 1 receptor (CSF1R) blockade cause significant microglial depletion, limiting therapeutic use.
Purpose of the Study:
- To investigate if partial CSF1R inhibition can reprogram primed microglia without causing substantial depletion.
- To assess the efficacy of low-dose CSF1R inhibition in preventing exacerbated inflammatory responses in primed microglia.
Main Methods:
- Microglial priming was induced in mice via neuraminidase injection.
- Mice received low-dose PLX5622 (a CSF1R inhibitor) for 12 days, followed by a 7-week recovery period.
- Neuroinflammation was re-challenged using lipopolysaccharide (LPS) before analysis of microglial response.
Main Results:
- Low-dose PLX5622 treatment reduced microglial population by 40%-50%, with basal levels restored after 7 weeks.
- Primed microglia in neuraminidase-injected mice showed exacerbated inflammatory responses to LPS.
- PLX5622 treatment prevented these LPS-induced exacerbated responses in the hippocampus and hypothalamus.
Conclusions:
- Partial CSF1R inhibition using low-dose PLX5622 effectively reverts microglial priming.
- This strategy avoids significant microglial depletion, presenting a promising therapeutic avenue for neuroinflammatory conditions.
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