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Fresh apple slice preservation driven by molecular hydrogen.

分子状水素を活用した新鮮リンゴスライスの鮮度保持に関する研究

other in vitro positive 0.01–1%

Abstract

During 8-day cold storage (4°C, 85% relative humidity), fresh-cut apple slices exhibited progressive surface browning and physiological deterioration that correlated with declining endogenous hydrogen gas (H2) levels. To clarify whether exogenous H2 supply could counteract these changes, modified atmosphere packaging (MAP) containing 0.01%, 0.1%, or 1% H2 was evaluated. Among the concentrations tested, 0.1% H2-MAP partially restored H2 homeostasis and most effectively retarded browning and water loss. Sensory quality, nutritional content, and antioxidant capacity were all better maintained compared with controls. Non-targeted metabolomics combined with molecular analyses revealed marked upregulation of flavonoid biosynthesis via the phenylpropanoid pathway under positive ion mode detection. These findings indicate that H2-MAP represents a promising approach for extending the shelf life and maintaining the quality of fresh-cut fruit products.

Mechanism

Exogenous H2 supply activates the phenylpropanoid metabolic pathway, upregulating flavonoid biosynthesis, which sustains antioxidant capacity and suppresses enzymatic browning and physiological deterioration in fresh-cut apple tissue.

Bibliographic

Authors
Jin S, Zhu G, Wang H, Zhou XQ, Cao F, Wang Z, et al.
Journal
Food Chem
Year
2025 (2025-10-01)
PMID
40446655
DOI
10.1016/j.foodchem.2025.144886

Tags

Delivery:吸入投与 Mechanism:抗酸化酵素 脂質過酸化 酸化ストレス 活性酸素種

Delivery context

This is basic research at the cellular or molecular level. For human application, inhalation is the most promising delivery route, but inhalation carries explosion risk and concentration matters (empirical LFL of 10%; high-concentration devices are not recommended).

Safety notes

This is basic research at the cellular or molecular level. For human application, inhalation is the most promising delivery route, but inhalation carries explosion risk and concentration matters (empirical LFL of 10%; high-concentration devices are not recommended).

See also:

Cite as: H2 Papers — PMID 40446655. https://h2-papers.org/en/papers/40446655
Source: PubMed PMID 40446655