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Published on: October 17, 2018
Molecular hydrogen reduces LPS-induced neuroinflammation and promotes recovery from sickness behaviour in mice
Stefan Spulber1, Karin Edoff, Lie Hong
1Department of Neuroscience, Karolinska Institutet, Stockholm, Sweden. stefan.spulber@ki.se
Abstract:
Molecular hydrogen has been shown to have neuroprotective effects in mouse models of acute neurodegeneration. The effect was suggested to be mediated by its free-radical scavenger properties. However, it has been shown recently that molecular hydrogen alters gene expression and protein phosphorylation. The aim of this study was to test whether chronic ad libitum consumption of molecular hydrogen-enriched electrochemically reduced water (H-ERW) improves the outcome of lipopolysaccharide (LPS)-induced neuroinflammation. Seven days after the initiation of H-ERW treatment, C57Bl/6 mice received a single injection of LPS (0.33 mg/kg i.p.) or an equivalent volume of vehicle. The LPS-induced sickness behaviour was assessed 2 h after the injection, and recovery was assessed by monitoring the spontaneous locomotor activity in the homecage for 72 h after the administration of LPS. The mice were killed in the acute or recovery phase, and the expression of pro- and antiinflammatory cytokines in the hippocampus was assessed by real-time PCR. We found that molecular hydrogen reduces the LPS-induced sickness behaviour and promotes recovery. These effects are associated with a shift towards anti-inflammatory gene expression profile at baseline (downregulation of TNF- α and upregulation of IL-10). In addition, molecular hydrogen increases the amplitude, but shortens the duration and promotes the extinction of neuroinflammation. Consistently, molecular hydrogen modulates the activation and gene expression in a similar fashion in immortalized murine microglia (BV-2 cell line), suggesting that the effects observed in vivo may involve the modulation of microglial activation. Taken together, our data point to the regulation of cytokine expression being an additional critical mechanism underlying the beneficial effects of molecular hydrogen.
Insights
Molecular hydrogen in enriched water reduced sickness behavior and accelerated recovery in a mouse model of neuroinflammation. This suggests molecular hydrogen
Area of Science:
- Neuroscience
- Molecular Biology
- Immunology
Background:
- Molecular hydrogen (H2) exhibits neuroprotective effects, potentially via free-radical scavenging.
- Recent findings indicate H2 influences gene expression and protein phosphorylation.
- The role of H2 in modulating neuroinflammation requires further investigation.
Purpose of the Study:
- To investigate the efficacy of chronic H2-enriched electrochemically reduced water (H-ERW) consumption in mitigating lipopolysaccharide (LPS)-induced neuroinflammation.
- To explore the underlying mechanisms, including gene expression changes in cytokines and microglial activation.
Main Methods:
- C57Bl/6 mice consumed H-ERW for 7 days prior to LPS injection.
- Sickness behavior and locomotor activity were assessed post-LPS administration.
- Hippocampal pro- and anti-inflammatory cytokine expression was analyzed using real-time PCR.
- Microglial activation and gene expression were studied in BV-2 cell lines.
Main Results:
- H-ERW consumption significantly reduced LPS-induced sickness behavior and promoted recovery.
- Molecular hydrogen treatment led to a shift towards an anti-inflammatory gene expression profile (downregulation of TNF-α, upregulation of IL-10).
- H2 modulated neuroinflammation, increasing its amplitude but shortening its duration and promoting extinction, with similar effects observed in murine microglia.
Conclusions:
- Chronic H-ERW consumption ameliorates LPS-induced neuroinflammation and sickness behavior in mice.
- Molecular hydrogen's beneficial effects are associated with the regulation of cytokine expression and microglial activation.
- Modulation of gene expression, particularly cytokines, represents a key mechanism for H2's neuroprotective actions.
