Hydrogen Research Study
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Preclinical animal evidenceAnimal studyOther or not reported

Hydrogen gas reduces chronic intermittent hypoxia‐induced hypertension by inhibiting sympathetic nerve activity and increasing vasodilator responses via the antioxidation

Guan Peng, Lin Xiao‐Meng, Yang Sheng‐Chang, Guo Ya‐Jing, Li Wen‐Ya, Zhao Ya‐Shuo, Yu Fu‐Yang, Sun Zhi‐Min, An Ji‐Ren, Ji En‐Sheng · Journal of Cellular Biochemistry · 2019

Research-use notice

Independent study record

Each H2HUBB study page organizes source-linked research details for educational use. Interpretation should remain proportional to the study design, population, controls, and limitations.

H2HUBB Research Library branded molecular hydrogen research image
Primary topic Blood Pressure and Vascular Function
Evidence type Preclinical animal evidence
Publication type Animal study
Hydrogen method Other or not reported
molecular hydrogen blood pressure study 2019 research summary

The publication “Hydrogen gas reduces chronic intermittent hypoxia‐induced hypertension by inhibiting sympathetic nerve activity and increasing vasodilator responses via the antioxidation” is organized in H2HUBB under the research focus molecular hydrogen blood pressure study 2019. The publication is cited as Guan Peng, Lin Xiao‐Meng, Yang Sheng‐Chang, Guo Ya‐Jing, Li Wen‐Ya, Zhao Ya‐Shuo, Yu Fu‐Yang, Sun Zhi‐Min, An Ji‐Ren, Ji En‐Sheng, Journal of Cellular Biochemistry, 2019. This animal study examined Hydrogen gas reduces chronic intermittent hypoxia‐induced hypertension by inhibiting sympathetic nerve activity and increasing vasodilator responses via the antioxidation. The abstract describes Rat model; reported duration 5 weeks. The abstract reports: We found that the systolic and diastolic blood pressure (BP) increased significantly in rats exposed to intermittent hypoxia, both of which were markedly attenuated…. This is an automated editorial draft based on the abstract and requires source review before publication.

Molecular hydrogen blood pressure study 2019 overview

This study aimed to investigate the effect of hydrogen (H ) gas on hypertension induced by intermittent hypoxia in rats. Animal research can identify biological effects and support future investigation, but it cannot by itself establish safety or effectiveness in humans.

Study design and hydrogen intervention

Publication type: Animal study. Evidence type: Preclinical animal evidence. Research model or population: Rat model. Blinding: Unknown. Control status: Unknown.

Delivery method: Other or not reported. Treatment duration: 5 weeks.

Reported findings and scientific interpretation

For this molecular hydrogen blood pressure study 2019, the study record reports the following: The abstract reports: We found that the systolic and diastolic blood pressure (BP) increased significantly in rats exposed to intermittent hypoxia, both of which were markedly attenuated…

These findings should be interpreted as one piece of evidence rather than as a stand-alone medical conclusion. Results can be influenced by the research model, study design, treatment protocol, sample size, outcome selection, statistical methods, and whether the findings have been independently reproduced.

How this research record was prepared

H2HUBB organizes bibliographic details, study design information, intervention data, outcomes, limitations, and safety notes from the available scientific source. Automated classification supports database organization, but it does not replace critical reading of the complete paper. Source identifiers, evidence labels, and delivery-method fields are retained so readers can verify the record and compare it with related publications. A missing field means the information was unavailable or not reported in the structured source; it should not be treated as a negative finding.

Limitations, safety, and original source

Limitations: Preclinical animal findings may not translate directly to human outcomes.

Safety: The abstract did not provide detailed safety or adverse-event information.

This H2HUBB page is an educational research record, not medical advice. Review the original scientific source for the complete methods and results. Continue exploring the H2HUBB Molecular Hydrogen Research Library to compare evidence types, delivery methods, and related topics.