Molecular hydrogen affords neuroprotection in a translational piglet model of hypoxic-ischemic encephalopathy.

In an animal model, H₂ was neuroprotective shown both by the enhanced recovery of EEG and by the significant preservation of neurons in the cerebral cortex, hippocampus, basal ganglia, and the thalamus. These preclinical findings add evidence supporting molecular hydrogen's therapeutic potential within the outcomes and biological pathways measured in this model.

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Hydrogen gas can ameliorate seizure burden during therapeutic hypothermia in asphyxiated newborn piglets.

In an animal model, the percentage of piglets with an abnormal aEEG background (aEEG-BG), abnormal aEEG-BG+Sz and SE was lower with TH + H₂ than with TH at 24 h after HI insult. These preclinical findings add evidence supporting molecular hydrogen's therapeutic potential within the outcomes and biological pathways measured in this model.

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Hydrogen gas inhalation alleviated cerebral ischemia/reperfusion injury by regulating mitophagy in SH-SY5Y cells and mice via PTEN-induced kinase 1/Parkin pathway.

In SH-SY5Y cells, H₂ treatment significantly improved cell viability, attenuated oxidative stress and mitochondrial dysfunction, and enhanced mitophagy via activation of the PINK1/Parkin pathway. The authors linked these findings to activation of the PINK1/Parkin pathway. These preclinical findings add evidence supporting molecular hydrogen's therapeutic potential within the outcomes and biological pathways measured in this model.

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Hydrogen supplemented air inhalation reduces changes of prooxidant enzyme and gap junction protein levels after transient global cerebral ischemia in the rat hippocampus.

In male Wistar rats, during reperfusion, several mechanisms can induce secondary neuronal damage, including the increased production of reactive oxygen species (ROS). These preclinical findings add evidence supporting molecular hydrogen's therapeutic potential within the outcomes and biological pathways measured in this model.

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Molecular hydrogen (H 2) has been reported to be effective for a variety of disorders and its effect has been ascribed to a selective scavenge of hydroxyl radicals (•OH) at the beginning. Consumption of H 2 was either by

In mice, hydrogen Works as a Signal Modulator Reduction of oxidative stress has been confirmed in various oxidative stress-related disease models. These preclinical findings add evidence supporting molecular hydrogen's therapeutic potential within the outcomes and biological pathways measured in this model.

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Hydrogen, the Next Neuroprotective Agent?

H2HUBB PLAIN-LANGUAGE TAKEAWAY The study adds to the molecular-hydrogen evidence base, but the available record does not support a firm conclusion about therapeutic benefit. Molecular hydrogen hydrogen safety study 2019: what the findings mean This H2HUBB page translates the technical study record into consumer-friendly language while preserving the scientific details. The publication “Hydrogen, the Next […]

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Neuroprotection after cerebral ischemia.

This conference abstract examined Neuroprotection after cerebral ischemia. This is an automated editorial draft based on the abstract and requires source review before publication.

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Hydrogen Gas Alleviates Sepsis-Induced Brain Injury by Improving Mitochondrial Biogenesis Through the Activation of PGC-α in Mice.

In mice, the present study showed that hydrogen gas therapy increased the 7-day survival rate, improved cognitive function, increased the mitochondrial function (MMP, ATP level, complex I activity) and expression of mitochondrial biogenesis parameters (PGC-1α, NRF2, Tfam). These results are preclinical and suggest molecular hydrogen's therapeutic potential in the condition studied. Further human research is needed to establish clinical effectiveness.

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Hydrogen-Rich Saline Attenuates Brain Injury Induced by Cardiopulmonary Bypass and Inhibits Microvascular Endothelial Cell Apoptosis Via the PI3K/Akt/GSK3β Signaling Pathway in Rats.

Hydrogen improved microvascular endothelial-cell viability partly through PI3K/Akt/GSK3β activation and inhibition of autophagy in a traumatic-brain-injury model. These findings come from a laboratory model and suggest molecular hydrogen's biological potential. Further research is needed to determine clinical relevance.

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Hydrogen Gas Treatment Improves the Neurological Outcome After Traumatic Brain Injury Via Increasing miR-21 Expression.

In a laboratory model, H₂ treatment decreased the levels of oxidative products (malondialdehyde and 8-iso-prostaglandin F2α) and increased the activities of endogenous antioxidant enzymes (superoxide dismutase and catalase) in brain after TBI, which were prevented by miR-21 antagomir. These findings come from a laboratory model and suggest molecular hydrogen's biological potential. Further research is needed to determine clinical relevance.

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Lactulose: an effective preventive and therapeutic option for ischemic stroke by production of hydrogen.

This publication examined molecular hydrogen using the study design reported by the authoritative source. This source-grounded publication contributes evidence relevant to molecular hydrogen and is retained in a transparent general research category when a more specific study design is not supported by the indexed record.

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Potential application of hydrogen in traumatic and surgical brain injury, stroke and neonatal hypoxia-ischemia.

Most reviewed studies demonstrated neuroprotective effects of hydrogen administration. This source-grounded publication contributes evidence relevant to molecular hydrogen and is retained in a transparent general research category when a more specific study design is not supported by the indexed record.

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Inhalation of 2% Hydrogen Improves Survival Rate and Attenuates Shedding of Vascular Endothelial Glycocalyx in Rats with Heat Stroke.

In Wistar rats, serum levels of endotoxin, syndecan-1, malondialdehyde, and tumor necrosis factor-α decreased, whereas superoxide dismutase levels increased, indicating that inhalation of 2% hydrogen attenuated the damage to the vascular endothelial glycocalyx through its antioxidative and anti-inflammatory effects. These results are preclinical and suggest molecular hydrogen's therapeutic potential in the condition studied. Further human research is needed to establish clinical effectiveness.

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Fatigue disappearance in hemodialysis patients by dual approach with hydrogen gas inhalation and hydrogen-enriched dialysate: two case reports.

In 4 patients, 6 This suggests that a higher concentration of H₂ is necessary to achieve further improvements in fatigue. These findings add human evidence supporting molecular hydrogen's therapeutic potential for stroke recovery.

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Hydrogen therapy may be an effective and specific novel treatment for acute radiation syndrome.

In Studies have show that reducing hydroxyl radicals can significantly improve the protection of cells from radiation damage, recent studies show that inhaled hydrogen gas (H(2)) has antioxidant and antiapoptotic activities that protect the brain against ischemia-reperfusion injury and stroke by selectively reducing hydroxyl and peroxynitrite radicals. These findings from a laboratory model add evidence supporting molecular hydrogen's biological and therapeutic potential in the model studied.

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