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Magnetic Cell–Scaffold Interface Constructed by Superparamagnetic IONP Enhanced Osteogenesis of Adipose-Derived Stem Cells

材料科学 脚手架 PLGA公司 组织工程 生物相容性 纳米技术 超顺磁性 再生医学 纳米颗粒 聚己内酯 磁性纳米粒子 静电纺丝 生物医学工程 氧化铁纳米粒子 纳米医学 干细胞 磁化 复合材料 聚合物 物理 磁场 生物 冶金 医学 量子力学 遗传学
作者
Huimin Chen,Jianfei Sun,Zibin Wang,Yi Zhou,Zhichao Lou,Bo Chen,Peng Wang,Zhirui Guo,Hui Tang,Junqing Ma,Yang Xia,Ning Gu,Feimin Zhang
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:10 (51): 44279-44289 被引量:75
标识
DOI:10.1021/acsami.8b17427
摘要

One of the key factors in tissue engineering and regenerative medicine is to optimize the interaction between seed cells and scaffolds such that the cells can grow in naturally biomimetic conditions. Their similarity to macromolecules and many unique properties mean that functional nanoparticles have promising potential for the modification and improvement of traditional scaffolds to obtain excellent biocompatibility, tunable stiffness, physical sensing, and stimulus-response capabilities. In the present study, we report magnetic poly(lactic- co-glycolic acid)/polycaprolactone (PLGA/PCL) scaffolds that were fabricated using a combination of the electrospinning technique and layer-by-layer assembly of superparamagnetic iron oxide nanoparticles (IONPs). PLGA/PCL scaffolds assembled with gold nanoparticles were prepared using the same method for comparison. The results showed that the assembled film of nanoparticles on the surface greatly enhanced the hydrophilicity and increased the elastic modulus of the scaffold, which subsequently improved the osteogenesis of the stem cells. Furthermore, the magnetic property of the IONPs proved to be the key factor in enhancing osteogenic differentiation, which explained the superior osteogenic capacity of the magnetic scaffolds compared with that of the gold nanoparticle-assembled scaffold. These results demonstrated the importance of magnetic nanomaterials as a bioactive interface between cells and scaffolds and will promote the design of biomaterials to improve tissue engineering and regenerative medicine efficacy.
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