丝素
脚手架
纳米技术
材料科学
组织工程
静电纺丝
纳米纤维
再生医学
自愈水凝胶
表面改性
再生(生物学)
桥接(联网)
细胞外基质
丝绸
计算机科学
桥(图论)
组织修复
天然组织
机械强度
生物医学工程
设计要素和原则
可扩展性
药物输送
作者
Xinyi He,Yuecheng Peng,Xiaohan Wei,Xuefeng Hu,Shengjie Lu,Kunneng Liang,Jieyu Zhang,Yunbing Wang
标识
DOI:10.1021/acsami.6c05865
摘要
Electrospun silk fibroin nanofibers (SFNFs) combine exceptional biocompatibility, tunable mechanical properties, and a native extracellular matrix (ECM)-mimetic architecture, making them compelling scaffolds for tissue engineering. Despite rapid progress, current research often pursues isolated material enhancements, lacking a cohesive strategy that aligns scaffold design with the complex biophysical and biochemical microenvironments of targeted tissues. To bridge this gap, this review presents a "design-application coupling" framework that systematically integrates SFNF composition, processing, and surface modifications with tissue-specific regenerative demands. Rather than exhaustively detailing basic manufacturing, we concisely distill advanced electrospinning modalities and targeted functionalization strategies─such as inorganic reinforcement and immunomodulation─that dictate mechanical robustness and bioactivity. Crucially, we map these engineered properties directly to their emerging clinical applications, comprehensively analyzing SFNF performance in the regeneration of bone, skeletal muscle, cardiovascular, neural, and skin tissues. Finally, we discuss critical challenges to clinical translation, including scalability and regulatory standardization, and propose future directions toward smart, bioresponsive materials. This framework provides a systematic pathway from bench-side innovation to bedside application, guiding the next generation of SFNF-based regenerative scaffolds.
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