Molecular Hydrogen Promotes Adipose-derived Stem Cell Myogenic Differentiation Regulation of Mitochondria.
Yang YX, Fei WY, Liu MS, Zhang YC, Gao RS, Hu YY, Pang EK, Hou L · Current stem cell research & therapy · 2023
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.

The publication “Molecular Hydrogen Promotes Adipose-derived Stem Cell Myogenic Differentiation Regulation of Mitochondria.” is organized in H2HUBB under the research focus molecular hydrogen mitochondrial function study 2023 yang. The publication is cited as Yang YX, Fei WY, Liu MS, Zhang YC, Gao RS, Hu YY, Pang EK, Hou L, Current stem cell research & therapy, 2023. This in vitro or cellular study examined Molecular Hydrogen Promotes Adipose-derived Stem Cell Myogenic Differentiation Regulation of Mitochondria. The abstract describes Stem-cell model. The abstract reports: This study reveals the application potential of H in skeletal muscle diseases or other pathologies related to mitochondrial dysfunction. This is an automated editorial draft based on the abstract and requires source review before publication.
Molecular hydrogen mitochondrial function study 2023 yang overview
This study aimed to reveal the role of H on adipose-derived stem cells' myogenic differentiation. Laboratory and cellular research can clarify mechanisms, but it does not establish clinical benefit or reproduce the complexity of a living human system.
Study design and hydrogen intervention
Publication type: In vitro or cellular study. Evidence type: Laboratory or cellular evidence. Research model or population: Stem-cell model. Blinding: Unknown. Control status: Unknown.
Delivery method: Other or not reported.
Reported findings and scientific interpretation
For this molecular hydrogen mitochondrial function study 2023 yang, the study record reports the following: The abstract reports: This study reveals the application potential of H in skeletal muscle diseases or other pathologies related to mitochondrial dysfunction.
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: Laboratory findings may not translate directly to living organisms or clinical 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.