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

材料科学 脚手架 再生(生物学) 复合数 活力测定 骨愈合 生物物理学 生物医学工程 细胞生物学 细胞 化学 复合材料 生物 生物化学 解剖 医学
作者
Zelong Song,Haichao Yu,Linhao Hou,Yuan Dong,Miaomiao Hu,Pengfei Wei,Wenchao Wang,Dingfei Qian,Shiqi Cao,Zhirong Zheng,Zhaoning Xu,Bo Zhao,Yiqian Huang,Jing Wei,Xuesong Zhang
出处
期刊:Advanced Functional Materials [Wiley]
卷期号:34 (24) 被引量:30
标识
DOI:10.1002/adfm.202315382
摘要

Abstract To 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.
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