A Covalent‐Metal Hybrid‐Link Organic Framework Spray for Portable and Instant Therapy of Deep‐Degree Burn

Author:

Lu Jiali123,Xiang Yiming14,Mao Congyang14,Wu Shuilin12ORCID,Wang Chaofeng3,Zheng Yufeng2,Zhang Yu5,Yeung Kelvin W. K.4,Liu Xiangmei13

Affiliation:

1. Biomedical Materials Engineering Research Center Hubei Key Laboratory of Polymer Materials Ministry‐of‐Education Key Laboratory for the Green Preparation and Application of Functional Materials School of Materials Science & Engineering Hubei University Wuhan 430062 China

2. School of Materials Science & Engineering Peking University Yi‐He‐Yuan Road 5# Beijing 100871 China

3. School of Health Science & Biomedical Engineering Hebei University of Technology Xiping Avenue 5340# Tianjin 300401 China

4. Department of Orthopaedics and Traumatology Li Ka Shing Faculty of Medicine The University of Hong Kong Pokfulam Hong Kong 999077 China

5. Department of Orthopedics Guangdong Provincial People's Hospital Guangdong Academy of Medical Sciences Guangzhou 510080 China

Abstract

AbstractDeep burns lead to extensive damage to the dermal layer, necessitating a longer treatment duration than typical skin injuries. Such burn wounds become more susceptible to drug‐resistant bacterial infections, thereby complicating and prolonging the therapeutic process. In this study, a unique spray composed of covalent metal hybrid‐linked organic frameworks (HLOF) material is developed that effectively eradicates methicillin‐resistant Staphylococcus aureus (MRSA) within 20 min by disrupting MRSA's surface electrons, destroying its cell membrane structure, and ultimately causing its demise with an impressive antibacterial rate of 96.7%. This HLOF material exhibited exceptional biological activity and stability. During the wound recovery procedure, HLOF promoted the expression of Vascular endothelial growthfactor(VEGF) to stimulate angiogenesis while inhibiting the proinflammatory factor Tumor necrosis factor alpha (TNF‐α) expression to eliminate inflammation and further enhance wound repair. This study presents an innovative approach for achieving outstanding antibacterial properties and improved biocompatibility through modifications made to common metal organic frameworks (MOFs), thus expanding their potential applications.

Funder

China National Funds for Distinguished Young Scientists

National Natural Science Foundation of China

Natural Science Foundation of Beijing Municipality

Distinguished Middle-Aged and Young Scientist Encourage and Reward Foundation of Shandong Province

Publisher

Wiley

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