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Updated: Jan 29, 2026

Polarization and Characterization of M1 and M2 Human Monocyte-Derived Macrophages on Implant Surfaces
Published on: December 6, 2024
Melatonin decreases M1 polarization via attenuating mitochondrial oxidative damage depending on UCP2 pathway in
Li Hu1, Shutian Zhang2, Haoyu Wen2
1Laboratory of Neuropharmacology and Neurotoxicology, Shanghai Key Laboratory of Bio-Energy Crops, College of Life Science, Shanghai University, Shanghai, P.R. China.
Abstract:
Accumulating evidence suggests that neuroinflammation and oxidative stress in cardiovascular center contribute to the pathological processes underlying hypertension. Microglia activation triggers the inflammation and oxidative stress. Melatonin is a documented potent anti-inflammatory regent and antioxidant, the underlying roles of melatonin in regulating microglia activation via mitochondria remain unclear. In present study, we investigated the protective role of melatonin in decreasing M1 phenotype switching via attenuating mitochondrial oxidative damage in dependence on uncoupling protein 2 (UCP2) pathway in microglia. Prorenin (20 nmol/L; 24 hr) was used to induce inflammation in cultured microglia. Mitochondrial morphology was detected by transmission electron microscope. The reactive oxygen species (ROS) production by using DCFH-DA fluorescence imaging and mitochondrial membrane potential (MMP, ΔΨm) was evaluated by JC-1 staining. The indicator of the redox status as the ratio of the amount of total NADP+ to total NADPH, and the expression of 6 subunits of NADPH oxidase is measured. The pro-inflammatory cytokines releasing was measured by qPCR. UCP2 and activated AMPKα (p-AMPKα) expression were examined by immunoblot. Melatonin (100 μM) markedly alleviated the M1 microglia phenotype shifting and abnormal mitochondria morphology. Melatonin attenuated prorenin-induced ΔΨm increasing and ROS overproduction. Melatonin decreased the redox ratio (NADP+/NADPH) and the p47phox and gp91phox subunits of NADPH oxidase expression in prorenin-treated microglia. These effects were reversed in the presence of UCP2 siRNA. Our results suggested that the protective effect of melatonin against prorenin-induced M1 phenotype switching via attenuating mitochondrial oxidative damage depending on UCP2 upregulation in prorenin-treated microglia.
Insights
Melatonin protects against hypertension-related neuroinflammation by reducing M1 microglia activation. It achieves this by mitigating mitochondrial oxidative damage through the uncoupling protein 2 (UCP2) pathway, offering a potential therapeutic target.
Area of Science:
- Neuroscience
- Cardiovascular Research
- Mitochondrial Biology
Background:
- Neuroinflammation and oxidative stress in the cardiovascular center are implicated in hypertension pathogenesis.
- Microglia activation is a key driver of this inflammation and oxidative stress.
- Melatonin, a known anti-inflammatory and antioxidant, has unclear roles in regulating microglia activation via mitochondria.
Purpose of the Study:
- To investigate the protective role of melatonin in mitigating M1 microglia phenotype switching.
- To explore melatonin's mechanism in attenuating mitochondrial oxidative damage.
- To determine the involvement of the uncoupling protein 2 (UCP2) pathway in melatonin's effects.
Main Methods:
- Prorenin was used to induce inflammation in cultured microglia.
- Mitochondrial morphology, reactive oxygen species (ROS) production, and mitochondrial membrane potential (MMP) were assessed.
- Redox status, NADPH oxidase subunits, pro-inflammatory cytokines, UCP2, and p-AMPKα expression were measured.
Main Results:
- Melatonin treatment reduced M1 microglia phenotype shifting and normalized abnormal mitochondrial morphology.
- Melatonin attenuated prorenin-induced increases in MMP and ROS overproduction.
- Melatonin decreased the redox ratio and specific NADPH oxidase subunits; these effects were reversed by UCP2 siRNA.
Conclusions:
- Melatonin exerts a protective effect against prorenin-induced M1 microglia activation.
- This protection is mediated by attenuating mitochondrial oxidative damage.
- The mechanism involves the upregulation of the uncoupling protein 2 (UCP2) pathway.
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