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The mitochondrial uncoupling protein-2 is a master regulator of both M1 and M2 microglial responses
Roberta De Simone1, Maria Antonietta Ajmone-Cat1, Manuela Pandolfi1
1Experimental Neurology Unit, Department of Cell Biology and Neurosciences, Istituto Superiore di Sanità, Rome, Italy.
Abstract:
Microglial activation is a dynamic process, central to neuroinflammation, which can have beneficial or pathogenic effects to human health. Mitochondria are key players in neuroinflammatory and neurodegenerative processes, common to most brain diseases. To the best of our knowledge on the role of mitochondria in the modulation of neuroinflammation, we focused on the mitochondrial uncoupling protein-2 (UCP2), known to control mitochondrial functions and to be implicated in a variety of physiological and pathological processes. In primary microglial cultures, the M1 stimulus lipopolysaccharide induced an early and transitory decrease in UCP2 levels. The initial UCP2 down-regulation was paralleled by mitochondrial inner membrane potential (mMP) depolarization and increased mitochondrial reactive oxygen species production. The key role of UCP2 in controlling mMP and reactive oxygen species production was confirmed by both pharmacological inhibition and down-regulation by RNA interference. Additionally, UCP2-silenced microglia stimulated with lipopolysaccharide showed an enhanced inflammatory response, characterized by a greater production of nitric oxide and interleukin-6. UCP2 was differently regulated by M2 stimuli, as indicated by its persistent up-regulation by interleukin-4. In UCP2-silenced microglia, interleukin-4 failed to induce M2 genes (mannose receptor 1 and interleukin-10) and to reduce M1 genes (inducible nitric oxide synthase and tumour necrosis factor-α). Our findings indicate that UCP2 is central to the process of microglial activation, with opposite regulation of M1 and M2 responses, and point to UCP2 manipulation as a potential strategy for redirecting microglial response towards protective phenotypes in several brain diseases where neuroinflammation is recognized to contribute to neurodegeneration. We show that the mitochondrial uncoupling protein-2 (UCP2) is central to the process of microglial activation, with opposite regulation of M1 and M2 responses. In UCP2-silenced microglia, lipopolysaccharide (LPS) triggers an enhanced inflammatory response characterized by a greater expression of M1 genes, whereas interleukin-4 (IL-4) fails in inducing M2 genes and reducing M1 genes. We propose UCP2 manipulation as a potential strategy for redirecting microglial response towards protective phenotypes.
Insights
Mitochondrial uncoupling protein-2 (UCP2) regulates microglial activation, influencing neuroinflammation. Manipulating UCP2 shows potential for treating brain diseases by redirecting microglial responses toward protective phenotypes.
Area of Science:
- Neuroscience
- Immunology
- Mitochondrial Biology
Background:
- Microglial activation is crucial in neuroinflammation, impacting brain health.
- Mitochondria play a key role in neuroinflammation and neurodegeneration.
- Mitochondrial uncoupling protein-2 (UCP2) modulates mitochondrial function and is involved in various disease processes.
Purpose of the Study:
- To investigate the role of UCP2 in microglial activation and neuroinflammation.
- To explore UCP2's regulation of M1 and M2 microglial responses.
- To assess the therapeutic potential of UCP2 manipulation in brain diseases.
Main Methods:
- Primary microglial cultures were used.
- Lipopolysaccharide (LPS) and interleukin-4 (IL-4) were employed as M1 and M2 stimuli, respectively.
- UCP2 levels were modulated using pharmacological inhibition and RNA interference (siRNA).
Main Results:
- LPS induced a transient decrease in UCP2, linked to mitochondrial depolarization and increased reactive oxygen species.
- UCP2 silencing enhanced LPS-induced M1 inflammatory responses (nitric oxide, IL-6).
- IL-4 failed to induce M2 genes and suppress M1 genes in UCP2-silenced microglia.
Conclusions:
- UCP2 is central to microglial activation, differentially regulating M1 and M2 responses.
- UCP2 manipulation offers a potential strategy to shift microglial activation towards protective phenotypes.
- Targeting UCP2 may be beneficial for neurodegenerative diseases involving neuroinflammation.
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