软骨
再生(生物学)
3D生物打印
过程(计算)
计算机科学
再生医学
适应(眼睛)
基质骨
材料科学
光学(聚焦)
基质(化学分析)
软骨下骨
生物医学工程
组织工程
纳米技术
灵活性(工程)
智能材料
关节软骨
功能(生物学)
生化工程
仿生材料
神经科学
仿生学
作者
Jiayou Chen,Rongji Liang,Shicheng Jia,Jingtao Huang,Peng Liu,Wei Li,Juan Wang,Wenguo Cui,Jianjing Lin
标识
DOI:10.1002/adfm.202522357
摘要
Abstract Bone and cartilage repair is a dynamically evolving process characterized by distinct and sometimes opposing biological demands across regenerative phases. Conventional static scaffolds, including 3D prints, are constrained by “geometric incongruity” and “biological dynamism”, failing to adapt to these temporal changes. 4D bioprinting offers a solution through “Spatiotemporal Adaptation”. A new analytical framework is proposed that classifies 4D strategies into two main categories. Intelligent structural transformation focuses on achieving dynamic shape, property, and mechanical matching. Intelligent functional evolution is defined by its capacity to actively guide these biological processes. These approaches—such as programmed immunomodulation, dynamic matrix stiffening, controlled drug delivery, and vascular‐osteogenesis coupling—are critically evaluated for their application in meeting the phase‐specific demands of bone and osteochondral regeneration. This framework shifts the focus from passive mimicry toward actively guided regeneration, providing a roadmap for next‐generation therapies for complex bone and cartilage defects.
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