Multifunctional Dual Network Hydrogel Loaded with Novel Tea Polyphenol Magnesium Nanoparticles Accelerates Wound Repair of MRSA Infected Diabetes

Author:

Hu Xulin12,He Jian3,Qiao Liang4,Wang Chun25,Wang Yao25,Yu Rongxin6,Xu Wei6,Wang Fan7,Yang Shuhao8,Zhang Xiangchun6,Qian Zhiyong1ORCID

Affiliation:

1. Department of Biotherapy Cancer Center and State Key Laboratory of Biotherapy West China Hospital Sichuan University Chengdu Sichuan 610041 China

2. Clinical Medical College and Affiliated Hospital of Chengdu University Chengdu University Chengdu Sichuan 610081 China

3. College of Medical Henan University of Science and Technology Luoyang 471023 China

4. Henan Univ Sci & Technol Affiliated Hosp 1 Key Lab Neuromol Biol Coll Clin Med Luoyang 471003 China

5. Affiliated Hospital of Chengdu University Chengdu 610081 China

6. Tea Research Institute Chinese Academy of Agricultural Sciences Hangzhou 310008 China

7. Department of Dermatology West China Hospital Sichuan University Chengdu Sichuan 610041 China

8. Department of Orthopedics The First Affiliated Hospital of Chongqing Medical University Chongqing 400042 China

Abstract

AbstractMethicillin‐resistant Staphylococcus aureus (MRSA) biofilm infection, caused by impaired glucose metabolism in diabetic foot patients, poses a significant obstacle to the healing process and carries a high risk of being life‐threatening. Due to microvascular occlusion and the entrenchment of MRSA biofilms in diabetic foot, controlling and effectively treating MRSA infection remains challenging. Traditional hydrogels suffer from swelling‐related mechanical issues and inadequate drug release control, limiting their applications as biomimetic extracellular matrices for wound healing. Herein, a double‐network hydrogel composed of polyvinyl alcohol, sodium alginate, and gelatin (PSG) loaded with tea polyphenol self‐assembled magnesium nanoparticles (TP‐Mg NPs) with antibacterial and angiogenic properties for treating MRSA‐infected diabetic foot wounds under hyperglycemic conditions is constructed. TP‐Mg@PSG exhibits enhanced mechanical strength and toughness for wound attachment and recovery movement torsion. In the acidic infection microenvironment representative of MRSA‐infected wounds, the TP‐Mg@PSG hydrogel degrades to release TP‐Mg NPs, showing excellent anti‐MRSA biofilm effect and high biocompatibility. Such localized controlled release enhances the inhibition of MRSA infection and reduces the inflammatory response in rats, promoting cell proliferation and rapid wound repair. Therefore, this study presents a multifunctional biomaterial system for managing diabetic foot conditions, highlighting its potential for clinical applications.

Funder

Natural Science Foundation of Sichuan Province

National Natural Science Foundation of China

Natural Science Foundation of Henan Province

Publisher

Wiley

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