间充质干细胞
类骨质
材料科学
干细胞
细胞生物学
生物医学工程
纳米纤维素
脚手架
细胞分化
组织工程
骨组织
解剖
化学
生物
医学
生物化学
纤维素
基因
作者
Feng Liu,Benjie Wei,Xiao‐Ying Xu,Baojin Ma,Shan Zhang,Jiazhi Duan,Ying Kong,Hongru Yang,Yuanhua Sang,Shuhua Wang,Wei Tang,Chao Liu,Hong Liu
标识
DOI:10.1002/adhm.202001851
摘要
Abstract Severe bone defects, especially accompanied by vascular and peripheral nerve injuries, remain a massive challenge. Most studies related to bone tissue engineering have focused on osteogenic differentiation of mesenchymal stem cells (MSCs), and ignored the formation of blood vessels and nerves in the newly generated bone owing to the lack of proper materials and methodology for tuning stem cells differentiated into osteogenic, neuronal, and endothelial cells (ECs) in the same scaffold system. Herein, a nanocellulose‐reinforced hybrid membrane with good mechanical properties and control over biodegradation by assembling ultralong hydroxyapatite nanobelts in a bacterial nanocellulose hydrogel is designed and synthesized. Osteogenic, neuronal cells are successfully differentiated on this hybrid membrane. Based on the multi‐lineage differentiation property of the membrane, a bioactive 3D osteoid tissue (osteogenic, neural, and ECs) is mimetically constructed in vitro using layer‐by‐layer culture and integration. The bone regeneration ability of the as‐prepared bioactive osteoid tissue is assessed in vivo via heterotopic osteogenesis experiments for eight weeks. The rapid new bone growth and formation of blood capillaries and nerve fibers prove that the hybrid membrane can be universally applied as a stem cell multi‐lineage differentiation platform, which has significant applications in bone tissue engineering.
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