Solid-state atomic hydrogen as a broad-spectrum RONS scavenger for accelerated diabetic wound healing

Author:

Luo Man1,Wang Qin2,Zhao Gang1,Jiang Wei2,Zeng Cici2,Zhang Qingao2,Yang Ruyu1,Dong Wang2,Zhao Yunxi3,Zhang Guozhen1,Jiang Jun1,Wang Yucai2,Zhu Qing14

Affiliation:

1. Key Laboratory of Precision and Intelligent Chemistry, School of Chemistry and Materials Science, University of Science and Technology of China , Hefei 230026 , China

2. Department of Radiology, The First Affiliated Hospital of University of Science and Technology of China, Division of Life Sciences and Medicine, University of Science and Technology of China , Hefei 230026 , China

3. Shenzhen Senior High School , Shenzhen 518040 , China

4. Institute of Intelligent Innovation, Henan Academy of Sciences , Zhengzhou 451162 , China

Abstract

ABSTRACT Hydrogen therapy shows great promise as a versatile treatment method for diseases associated with the overexpression of reactive oxygen and nitrogen species (RONS). However, developing an advanced hydrogen therapy platform that integrates controllable hydrogen release, efficient RONS elimination, and biodegradability remains a giant technical challenge. In this study, we demonstrate for the first time that the tungsten bronze phase H0.53WO3 (HWO) is an exceptionally ideal hydrogen carrier, with salient features including temperature-dependent highly-reductive atomic hydrogen release and broad-spectrum RONS scavenging capability distinct from that of molecular hydrogen. Moreover, its unique pH-responsive biodegradability ensures post-therapeutic clearance at pathological sites. Treatment with HWO of diabetic wounds in an animal model indicates that the solid-state atomic H promotes vascular formation by activating M2-type macrophage polarization and anti-inflammatory cytokine production, resulting in acceleration of chronic wound healing. Our findings significantly expand the basic categories of hydrogen therapeutic materials and pave the way for investigating more physical forms of hydrogen species as efficient RONS scavengers for clinical disease treatment.

Funder

Innovation Program for Quantum Science and Technology

Chinese Academy of Sciences

National Natural Science Foundation of China

Anhui Provincial Natural Science Foundation

Publisher

Oxford University Press (OUP)

Subject

Multidisciplinary

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