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Neuronal Dysfunction and Behavioral Abnormalities Are Evoked by Neural Cells and Aggravated by Inflammatory Microglia
Lien Beckers1, Stijn Stroobants2, Rudi D'Hooge2
1Laboratory for Cell Metabolism, Department of Pharmaceutical and Pharmacological Sciences, KU Leuven-University of Leuven, Leuven, Belgium.
Abstract:
It is becoming evident that microglia, the resident immune cells of the central nervous system (CNS), are active contributors in neurological disorders. Nevertheless, the impact of microgliosis on neuropathology, behavior and clinical decline in neuropathological conditions remains elusive. A mouse model lacking multifunctional protein-2 (MFP2), a pivotal enzyme in peroxisomal β-oxidation, develops a fatal disorder characterized by motor problems similar to the milder form of human disease. The molecular mechanisms underlying neurological decline in men and mice remain unknown. The hallmark of disease in the mouse model is chronic proliferation of microglia in the brain without provoking neuronal loss or demyelination. In order to define the contribution of Mfp2 neural cells to development of microgliosis and clinical neuropathology, the constitutive Mfp2-/- mouse model was compared to a neural selective Nestin-Mfp2-/- mouse model. We demonstrate in this study that, in contrast to early-onset and severe microgliosis in constitutive Mfp2-/- mice, Mfp2+/+ microglia in Nestin-Mfp2-/- mice only become mildly inflammatory at end stage of disease. Mfp2-/- microglia are primed and acquire a chronic and strong inflammatory state in Mfp2-/- mice whereas Mfp2+/+ microglia in Nestin-Mfp2-/- mice are not primed and adopt a minimal activation state. The inflammatory microglial phenotype in Mfp2-/- mice is correlated with more severe neuronal dysfunction, faster clinical deterioration and reduced life span compared to Nestin-Mfp2-/- mice. Taken together, our study shows that deletion of MFP2 impairs behavior and locomotion. Clinical decline and neural pathology is aggravated by an early-onset and excessive microglial response in Mfp2-/- mice and strongly indicates a cell-autonomous role of MFP2 in microglia.
Insights
Multifunctional protein-2 (MFP2) deficiency in microglia drives severe neurological decline and inflammation. Loss of MFP2 in neural cells alone causes milder disease, indicating MFP2’s cell-autonomous role in microglia.
Area of Science:
- Neuroscience
- Immunology
- Genetics
Background:
- Microglia are key immune cells in the central nervous system (CNS) implicated in neurological disorders.
- The precise impact of microgliosis on neuropathology and clinical outcomes remains unclear.
- Multifunctional protein-2 (MFP2) deficiency causes a fatal neurological disorder with motor deficits.
Purpose of the Study:
- To investigate the cell-autonomous role of MFP2 in microglia in the context of neurological disease.
- To differentiate the contribution of MFP2 in neural cells versus microglia to disease pathogenesis.
- To elucidate the molecular mechanisms underlying neurological decline in MFP2-deficient models.
Main Methods:
- Comparison of constitutive Mfp2 knockout (Mfp2-/-) mice with neural-selective Mfp2 knockout (Nestin-Mfp2-/-) mice.
- Analysis of microglial activation, proliferation, and inflammatory state in both mouse models.
- Assessment of neuropathology, behavioral deficits, and lifespan in relation to microgliosis.
Main Results:
- Constitutive Mfp2-/- mice exhibit early-onset, severe microgliosis and rapid clinical deterioration.
- Nestin-Mfp2-/- mice show only mild microglial activation at the end stage of disease.
- Mfp2-/- microglia are primed for chronic inflammation, correlating with severe neuronal dysfunction and reduced lifespan.
Conclusions:
- MFP2 plays a cell-autonomous role in regulating microglial inflammatory responses.
- Early-onset microgliosis driven by MFP2 deficiency exacerbates neurological decline and neuropathology.
- MFP2 is critical for maintaining microglial homeostasis and preventing detrimental neuroinflammation.
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