Injective Programmable Proanthocyanidin‐Coordinated Zinc‐Based Composite Hydrogel for Infected Bone Repair

Author:

Wang Yue12,Zhao Yitao12,Ma Shiyuan12,Fu Meimei12,Wu Min12,Li Jintao12,Wu Keke12,Zhuang Xiuli3,Lu Zhihui124,Guo Jinshan1245ORCID

Affiliation:

1. Department of Histology and Embryology NMPA Key Laboratory for Safety Evaluation of Cosmetics School of Basic Medical Sciences Guangzhou 510515 P. R. China

2. Guangdong Provincial Key Laboratory of Bone and Joint Degeneration Diseases The Third Affiliated Hospital of Southern Medical University Southern Medical University Guangzhou 510630 P. R. China

3. Key Laboratory of Polymer Ecomaterials Changchun Institute of Applied Chemistry Chinese Academy of Sciences 5625 Renmin Street Changchun 130022 P. R. China

4. Regenerative Medicine and Tissue Repair Material Research Center Huangpu Institute of Materials 88 Yonglong Avenue of Xinlong Town Guangzhou 511363 P. R. China

5. Guangzhou New Materials Science Center, Changchun Institute of Applied Chemistry Chinese Academy of Sciences 88 Yonglong Avenue of Xinlong Town Guangzhou 511361 P. R. China

Abstract

AbstractEffectively integrating infection control and osteogenesis to promote infected bone repair is challenging. Herein, injective programmable proanthocyanidin (PC)‐coordinated zinc‐based composite hydrogels (ipPZCHs) are developed by compositing antimicrobial and antioxidant PC‐coordinated zinc oxide (ZnO) microspheres with thioether‐grafted sodium alginate (TSA), followed by calcium chloride (CaCl2) crosslinking. Responsive to the high endogenous reactive oxygen species (ROS) microenvironment in infected bone defects, the hydrophilicity of TSA can be significantly improved, to trigger the disintegration of ipPZCHs and the fast release of PC‐coordinated ZnOs. This together with the easily dissociable PC‐Zn2+ coordination induced fast release of antimicrobial zinc (Zn2+) with/without silver (Ag+) ions from PC‐coordinated ZnOs (for Zn2+, > 100 times that of pure ZnO) guarantees the strong antimicrobial activity of ipPZCHs. The exogenous ROS generated by ZnO and silver nanoparticles during the antimicrobial process further speeds up the disintegration of ipPZCHs, augmenting the antimicrobial efficacy. At the same time, ROS‐responsive degradation/disintegration of ipPZCHs vacates space for bone ingrowth. The concurrently released strong antioxidant PC scavenges excess ROS thus enhances the immunomodulatory (in promoting the anti‐inflammatory phenotype (M2) polarization of macrophages) and osteoinductive properties of Zn2+, thus the infected bone repair is effectively promoted via the aforementioned programmable and self‐adaptive processes.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Pharmaceutical Science,Biomedical Engineering,Biomaterials

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