Metal-phenolic network biointerface-mediated cell regulation for bone tissue regeneration

生物界面 再生(生物学) 细胞生物学 业务 化学 纳米技术 材料科学 生物
作者
Ying Wang,Zhi-Bang Li,Ruiqing Yu,Yi Chen,Danyang Wang,Weiwei Zhao,Shaohua Ge,Hong Liu,Jianhua Li
出处
期刊:Materials today bio [Elsevier BV]
卷期号:30: 101400-101400 被引量:20
标识
DOI:10.1016/j.mtbio.2024.101400
摘要

Bone tissue regeneration presents a significant challenge in clinical treatment due to inadequate coordination between implant materials and reparative cells at the biomaterial-bone interfaces. This gap underscores the necessity of enhancing interaction modulation between cells and biomaterials, which is a crucial focus in bone tissue engineering. Metal-polyphenolic networks (MPN) are novel inorganic-organic hybrid complexes that are formed through coordination interactions between phenolic ligands and metal ions. These networks provide a multifunctional platform for biomedical applications, with the potential for tailored design and modifications. Despite advances in understanding MPN and their role in bone tissue regeneration, a comprehensive overview of the related mechanisms is lacking. Here, we address this gap by focusing on MPN biointerface-mediated cellular regulatory mechanisms during bone regeneration. We begin by reviewing the natural healing processes of bone defects, followed by a detailed examination of MPN, including their constituents and distinctive characteristics. We then explore the regulatory influence of MPN biointerfaces on key cellular activities during bone regeneration. Additionally, we illustrate their primary applications in addressing inflammatory bone loss, regenerating critical-size bone defects, and enhancing implant-bone integration. In conclusion, this review elucidates how MPN-based interfaces facilitate effective bone tissue regeneration, advancing our understanding of material interface-mediated cellular control and the broader field of tissue engineering.
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