ROS-Scavenging Electroactive Polyphosphazene-Based Core–Shell Nanofibers for Bone Regeneration

PLGA公司 纳米纤维 材料科学 聚磷腈 脚手架 骨组织 化学 纳米技术 聚合物 生物医学工程 复合材料 纳米颗粒 医学
作者
Yiqian Huang,Zhiyun Du,Ke Li,Jing Wei,Pengfei Wei,Bo Zhao,Yingjie Yu,Qing Cai,Xiaoping Yang
出处
期刊:Advanced Fiber Materials [Springer Science+Business Media]
卷期号:4 (4): 894-907 被引量:57
标识
DOI:10.1007/s42765-022-00153-8
摘要

Bone defects are always accompanied by inflammation due to excessive reactive oxygen species (ROS) in injured regions, which greatly impedes the regeneration of bone tissues. Although many conductive polymers have been developed to scavenge ROS, they are typically non-degradable under physiological conditions, making them unsuitable for in vivo applications. Biodegradable polyorganophosphazenes (POPPs) may serve as potent ROS-scavenging biomaterials owing to their versatile chemical structures and ease of functionalization. Herein, a PATGP-type electroactive polyphosphazene with side groups of aniline tetramer and glycine ethyl ester was compared to conventional poly(lactic-co-glycolic acid) (PLGA) in regenerating bone tissues. To conduct in vitro and in vivo evaluations, three kinds of electrospun nanofibrous meshes were prepared: PLGA, PLGA/PATGP blend, and PLGA/PATGP core–shell nanofibers. Among them, PLGA/PATGP core–shell nanofibers outperform the blend and PLGA nanofibers in terms of scavenging ROS, promoting osteogenic differentiation, and accelerating neo-bone formation. The continuous PATGP shell on the PLGA/PATGP core–shell nanofiber surface could apparently provide more significant modulation effects on cellular behaviors than the PLGA/PATGP blend nanofibers with PATGP dispersed in the PLGA matrix. Therefore, the core–shell structured PLGA/PATGP nanofibers were envisioned as a promising candidate scaffold for bone tissue engineering. Additionally, the core–shell design paved the way for biomedical applications of functional POPPs in combination with other polymeric biomaterials, without phase separation or difficulty of increasing the molecular weights of POPPs.Graphical abstract
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