A TLR4‐Targeting Bioactive Peptide Hydrogel to Regulate Immune‐Microenvironment for Diabetic Wound Repair

Author:

Jian Chuanjiang1,Wang Minjia1,Qian Yunyun2,Song Xuejiao1,Wang Li3,Li Ling1,Huang Lulu4,Wang Guan5,Shi Xianjie1,Dong Jinqiao6,Li Hao2,Lin Ang4,Shi Leilei3ORCID

Affiliation:

1. The Eighth Affiliated Hospital Sun Yat‐sen University 3025 Shennan Middle Road Shenzhen 518000 China

2. Department of Organ Transplantation Xiang'an Hospital of Xiamen University School of Medicine Xiamen University Xiamen Fujian 361005 China

3. Precision Research Center for Refractory Diseases in Shanghai General Hospital Shanghai Key Laboratory of Pancreatic Diseases Shanghai Jiao Tong University School of Medicine Shanghai 200025 China

4. Vaccine Center School of Basic Medicine and Clinical Pharmacy China Pharmaceutical University Nanjing 211198 China

5. Department of Immunology College of Basic Medical Science Dalian Medical University Dalian Liaoning 116044 China

6. School of Chemistry and Chemical Engineering Frontiers Science Center for Transformative Molecules and State Key Laboratory of Metal Matrix Composites Shanghai Jiao Tong University Shanghai 200240 China

Abstract

AbstractPersistent inflammation and disrupted immunoregulation are critical factors in impeding diabetic wound healing. While immunoregulatory hydrogel dressings hold significant promise for clinical applications in diabetic wound healing, the current application often demands intricate interventions and high‐cost treatments involving cytokines and cell therapies. The development of single component immunoregulatory hydrogels remains a complex challenge. To address this issue, an active peptide hydrogel with immunoregulatory properties targeting the TLR4/NF‐kB pathway, aiming to promote rapid diabetic wound healing, is engineered. The hydrogel sequence comprises naphthalene derivative, phenylalanine, and glycine to modulate hydrophilic/hydrophobic characteristics. The amino group on arginine contributes to tissue adhesion and regulation of intermolecular forces, ultimately yielding stable gels. The results underscore the formation of the peptide hydrogel (NFA) via the physical crosslinking of self‐assembled nanofibers in water, thereby affording both excellent injectability and tissue adhesion. Notably, NFA demonstrates significant potential in promoting wound healing in a mouse model with full‐thickness wounds by regulating macrophage responses in the inflammatory microenvironment through the TLR4/NF‐kB pathway.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Guangdong Province

Publisher

Wiley

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