Gastrointestinal tract delivery of hydrogen by dynamic gas-releasing frameworks

Given the broad therapeutic benefits of molecular hydrogen, gastrointestinal delivery of this gasotransmitter is attractive for treating localized inflammatory diseases, yet conventional H2-releasing formulations suffer from limited solubility and poor tunability. Here, we develop gas-releasing frameworks (GRFs) for effective H2 delivery to the gastrointestinal tract. GRFs provide 20,000-fold higher hydrogen storage than hydrogen-rich water (HRW), prevent burst leakage in acidic gastric fluid, and enable sustained, inflammation-targeted H2 release in the intestine. After H2 release, the dynamic framework sequesters toxic boron within a reconstituted Si-O-B architecture, promoting fecal rather than systemic boron accumulation and improving long-term biosafety. Consequently, GRFs outperform HRW in mitigating oxidative damage and inflammation in dextran sulfate sodium-induced colitis, radiation-induced colitis, and high-fat diet-induced non-alcoholic fatty liver disease. Collectively, these gas-releasing frameworks provide a feasible, safe, and translatable strategy for gastrointestinal delivery of therapeutic gases and treatment of inflammatory disorders. Hydrogen therapy is limited by efficient storage and controlled release. Here, the authors show that gas-releasing frameworks enable high-capacity, sustained intestinal H2 delivery for management of multiple inflammatory disorders.

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Publication Details

Journal
Nature Communications
Published
2026-10-06
DOI
https://doi.org/10.1038/s41467-026-78290-6
Primary Topic
Hydrogen's biological and therapeutic effects
Type
article
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article

Gastrointestinal tract delivery of hydrogen by dynamic gas-releasing frameworks

Dan Shao, Fangman Chen, Junna Lu, Kam W. Leong et al.
Nature Communications
Hydrogen's biological and therapeutic effects
article

Gastrointestinal tract delivery of hydrogen by dynamic gas-releasing frameworks

Dan Shao, Fangman Chen, Junna Lu, Kam W. Leong, Madi Sun, Yidan Zhang, He Shen, Chao Yang, Wang Yingshuai, Xiaochun Xie, Xin Zhao, Huanfen Lu
article en

Abstract

Given the broad therapeutic benefits of molecular hydrogen, gastrointestinal delivery of this gasotransmitter is attractive for treating localized inflammatory diseases, yet conventional H2-releasing formulations suffer from limited solubility and poor tunability. Here, we develop gas-releasing frameworks (GRFs) for effective H2 delivery to the gastrointestinal tract. GRFs provide 20,000-fold higher hydrogen storage than hydrogen-rich water (HRW), prevent burst leakage in acidic gastric fluid, and enable sustained, inflammation-targeted H2 release in the intestine. After H2 release, the dynamic framework sequesters toxic boron within a reconstituted Si-O-B architecture, promoting fecal rather than systemic boron accumulation and improving long-term biosafety. Consequently, GRFs outperform HRW in mitigating oxidative damage and inflammation in dextran sulfate sodium-induced colitis, radiation-induced colitis, and high-fat diet-induced non-alcoholic fatty liver disease. Collectively, these gas-releasing frameworks provide a feasible, safe, and translatable strategy for gastrointestinal delivery of therapeutic gases and treatment of inflammatory disorders. Hydrogen therapy is limited by efficient storage and controlled release. Here, the authors show that gas-releasing frameworks enable high-capacity, sustained intestinal H2 delivery for management of multiple inflammatory disorders.

Nature Communications
Chinese Academy of Medical Sciences & Peking Union Medical College (CN), Third Affiliated Hospital of Southern Medical University (CN), Tianjin Medical University (CN), Columbia University (US), South China University of Technology (CN)
Openalex Percentile: Top 9%
Hydrogen's biological and therapeutic effects
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