聚偏氟乙烯
材料科学
纳米纤维
静电纺丝
干细胞
间充质干细胞
组织工程
纳米技术
膜
生物物理学
细胞生物学
生物医学工程
化学
生物
复合材料
生物化学
聚合物
医学
作者
Hanbai Wu,Shuo Shi,Huiqun Zhou,Chuanwei Zhi,Shuo Meng,Weng Fu Io,Yang Ming,Yuchao Wang,Leqi Lei,Bin Fei,Jianhua Hao,Jinlian Hu
标识
DOI:10.1002/adfm.202309270
摘要
Abstract Smart electroactive materials that can dynamically regulate stem cell fate without external stimuli have fascinated increasing attention. Meanwhile, noninvasive electrical stimulation has emerged as a less restrictive approach, generating considerable interest in its potential biomedical applications. The intricate interplay between cells and materials within complex microenvironments includes encompassing substrate response, ion exchange, and membrane potential alterations. However, the mechanisms by which smart materials influence stem cells have yet to be fully elucidated. Herein, electrospinning technology is utilized to fabricate bone‐mimicking microenvironments comprising disordered and highly oriented polyvinylidene fluoride (PVDF) nanofibers. The aligned annealed PVDF (AA) and random annealed PVDF (RA) membranes present high fractions of β‐phase. By comparing the osteogenic ability, calcium activity, and F‐actin distribution of bone marrow‐derived mesenchymal stem cells (BMSCs) cultured with these PVDF nanofibers, it is proposed that the stem cells autonomously regulate their differentiation by remodeling the cytoskeleton on the electrospun membranes. Electrical stimulation, more adhesion area, and active calcium influx support the greater osteogenesis of BMSCs on RA than AA. This mechanism can provide a basic theory for the design and preparation of bone tissue engineering scaffolds and contribute to the further study of cells and microenvironments.
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