Advanced Multifunctional Hydrogels for Enhanced Wound Healing through Ultra‐Fast Selenol‐SNAr Chemistry

Author:

Wu Yan12,Bei Ying23,Li Wenjing1,Lu Weihong1,Zhu Jian1,Zhang Zhengbiao1,Zhang Tinglin4,Liu Sen2,Chen Kaiyuan2,Jin Hong2,Li Luxin2,Li Meng5,Gao Jie46,Pan Xiangqiang12ORCID

Affiliation:

1. State and Local Joint Engineering Laboratory for Novel Functional Polymeric Materials Jiangsu Key Laboratory of Advanced Functional Polymer Design and Application College of Chemistry Chemical Engineering and Materials Science Soochow University Suzhou 215123 China

2. College of Life Science Mudanjiang Medical University Mudanjiang 157011 China

3. Hainan Academy of Medical Sciences Hainan Medical University Hainan 571199 China

4. Changhai Clinical Research Unit Shanghai Changhai Hospital Naval Medical University Shanghai 200433 China

5. Department of Dermatology Shanghai Children's Medical Center School of Medicine Shanghai Jiao Tong University Shanghai 200010 China

6. Shanghai Key Laboratory of Nautical Medicine and Translation of Drugs and Medical Devices Shanghai 200433 China

Abstract

AbstractFabrication of versatile hydrogels in a facile and effective manner represents a pivotal challenge in the field of biomaterials. Herein, a novel strategy is presented for preparing on‐demand degradable hydrogels with multilevel responsiveness. By employing selenol‐dichlorotetrazine nucleophilic aromatic substitution (SNAr) to synthesize hydrogels under mild conditions in a buffer solution, the necessity of additives or posttreatments can be obviated. The nucleophilic and redox reactions between selenol and tetrazine culminate in the formation of three degradable chemical bonds—diselenide, aryl selenide, and dearomatized selenide—in a single, expeditious step. The resultant hydrogel manifests exceptional adaptability to intricate environments in conjunction with self‐healing and on‐demand degradation properties. Furthermore, the resulting material demonstrated light‐triggered antibacterial activity. Animal studies further underscore the potential of integrating metformin into Se‐Tz hydrogels under green light irradiation, as it effectively stimulates angiogenesis and collagen deposition, thereby fostering efficient wound healing. In comparison to previously documented hydrogels, Se‐Tz hydrogels exhibit controlled degradation and drug release, outstanding antibacterial activity, mechanical robustness, and bioactivity, all without the need for costly and intricate preparation procedures. These findings underscore Se‐Tz hydrogels as a safe and effective therapeutic option for diabetic wound dressings.

Funder

National Natural Science Foundation of China

Natural Science Research of Jiangsu Higher Education Institutions of China

Publisher

Wiley

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