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Targeting MAPK Pathways by Naringenin Modulates Microglia M1/M2 Polarization in Lipopolysaccharide-Stimulated
Bei Zhang1, Yi-Zheng Wei1, Guo-Qing Wang1
1Key Laboratory of Basic Pharmacology of Ministry of Education, Joint International Research Laboratory of Ethnomedicine of Ministry of Education, Zunyi Medical University, Zunyi, China.
Abstract:
Neuroinflammation is considered to be an important and inevitable pathological process associated with all types of damages to, and disorders of, the central nervous system. The hallmark of neuroinflammation is the microglia activation. In response to different micro-environmental disturbances, microglia could polarize into either an M1 pro-inflammatory phenotype, exacerbating neurotoxicity, or an M2 anti-inflammatory phenotype, exerting neuroprotection. Therefore, shifting the polarization of microglia toward the M2 phenotype could possess a more viable strategy for the neuroinflammatory disorders treatment. Naringenin (NAR) is naturally a grapefruit flavonoid and possesses various kinds of pharmacological activities, such as anti-inflammatory and neuroprotective activities. In the present study, we aimed to investigate the potential effects of NAR on microglial M1/M2 polarization and further reveal the underlying mechanisms of actions. First, NAR inhibited lipopolysaccharide (LPS)-induced microglial activation. Then, NAR shifted the M1 pro-inflammatory microglia phenotype to the M2 anti-inflammatory M2 microglia state as demonstrated by the decreased expression of M1 markers (i.e., inducible TNF-α and IL-1β) and the elevated expression of M2 markers (i.e., arginase 1, IL-4, and IL-10). In addition, the effects of NAR on microglial polarization were dependent on MAPK signaling, particularly JNK inactivation, as evidenced by the fact that the selective activator of JNK abolished NAR-promoted M2 polarization and further NAR-inhibited microglial activation. Together, this study demonstrated that NAR promoted microglia M1/M2 polarization, thus conferring anti-neuroinflammatory effects via the inhibition of MAPK signaling activation. These findings might provide new alternative avenues for neuroinflammation-related disorders treatment.
Insights
Naringenin (NAR) shifts microglia from pro-inflammatory M1 to anti-inflammatory M2 states, reducing neuroinflammation. This effect is mediated by inhibiting MAPK signaling, offering a potential treatment for neuroinflammatory disorders.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Neuroinflammation, characterized by microglia activation, is central to central nervous system damage and disorders.
- Microglia can adopt M1 (pro-inflammatory) or M2 (anti-inflammatory) phenotypes, influencing neurotoxicity or neuroprotection.
- Modulating microglia polarization towards the M2 phenotype presents a therapeutic strategy for neuroinflammatory conditions.
Purpose of the Study:
- To investigate the effects of Naringenin (NAR) on microglial M1/M2 polarization.
- To elucidate the underlying molecular mechanisms of NAR's action on microglia.
Main Methods:
- Assessed NAR's impact on lipopolysaccharide (LPS)-induced microglial activation.
- Quantified M1 (TNF-α, IL-1β) and M2 (arginase 1, IL-4, IL-10) marker expression.
- Investigated the role of MAPK signaling, specifically JNK, in NAR's effects.
Main Results:
- NAR inhibited LPS-induced microglial activation.
- NAR promoted a shift from M1 to M2 microglia polarization, decreasing M1 markers and increasing M2 markers.
- NAR's effects on polarization and activation were dependent on the inactivation of JNK within the MAPK signaling pathway.
Conclusions:
- Naringenin promotes M2 microglia polarization, exerting anti-neuroinflammatory effects.
- The mechanism involves the inhibition of MAPK signaling, particularly JNK.
- NAR represents a potential therapeutic agent for treating neuroinflammation-related disorders.
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