Mechanics‐Resilient HA/SIS‐Based Composite Scaffolds with ROS‐Scavenging and Bacteria‐Resistant Capacity to Address Infected Bone Regeneration

Author:

Song Zelong12,Yu Haichao12,Hou Linhao2,Dong Yuan23,Hu Miaomiao4,Wei Pengfei45,Wang Wenchao12,Qian Dingfei2,Cao Shiqi2,Zheng Zhirong2,Xu Zhaoning6,Zhao Bo4,Huang Yiqian4,Jing Wei45,Zhang Xuesong12ORCID

Affiliation:

1. School of Medicine Nankai University No. 94 Weijin Road Tianjin 300071 China

2. Department of Orthopaedics The Fourth Medical Centre Chinese PLA General Hospital No. 51 Fucheng Road Beijing 100048 China

3. Chinese PLA Medical School No. 1 Courtyard North Taiping Road Beijing 100000 China

4. Beijing Biosis Healing Biological Technology Co., Ltd. No. 6 Plant west valley No.1 Bio‐medicine Industry Park Beijing 102600 China

5. Foshan (Southern China) Institute for New Materials Foshan 528220 China

6. Cheeloo College of Medicine Shandong University Jinan 250012 China

Abstract

AbstractTo address and regenerate infected bone defects complicated by issues such as inflammation and bone resorption, and to promote bone regeneration, this study focuses on the development of a composite scaffold with reactive oxygen species (ROS)‐scavenging and bacteria‐resistant properties. The composite scaffold integrates a self‐assembled small intestinal submucosa (SIS) hydrogel with pre‐adsorbed hydroxyapatite (HA) particles and tannic acid (TA), demonstrating distinctive mechanical resilience and porous structures, suitable for filling irregular cavities and facilitating cell infiltration, while exhibiting a broad‐spectrum of antibacterial efficacy and robust ROS‐scavenging capacity for tissue regeneration. RNA‐sequencing analysis indicates the underlying mechanism revealing the disrupting of arginine and alanine amino acid biosynthesis. Furthermore, the composite scaffold demonstrates excellent cytocompatibility, with cell viability exceeding 70%. Remarkably, it demonstrates exceptional anti‐inflammatory performances (≈5‐fold to the control). In an infected bone defect model, the composite scaffold facilitates superior bone regeneration, being ≈5‐fold greater than the control, while maintaining a conducive environment for cell adhesion and infiltration without scaffold collapse. This multifunctional composite scaffold emerges as a promising candidate for combating infections in bone regeneration, showcasing its potential in addressing complex bone‐related challenges.

Funder

National Natural Science Foundation of China

Basic and Applied Basic Research Foundation of Guangdong Province

Publisher

Wiley

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