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Novel magnetic calcium phosphate-stem cell construct with magnetic field enhances osteogenic differentiation and bone tissue engineering

机译:具有磁场的新型磷酸钙 - 干细胞构建体增强了成骨分化和骨组织工程

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摘要

Superparamagnetic iron oxide nanoparticles (IONPs) are promising bioactive additives to fabricate magnetic scaffolds for bone tissue engineering. To date, there has been no report on osteoinductivity of IONP-incorporated calcium phosphate cement (IONP-CPC) scaffold on stem cells using an exterior static magnetic field (SMF). The objectives of this study were to: (1) develop a novel magnetic IONP-CPC construct for bone tissue engineering, and (2) investigate the effects of IONP-incorporation and SMF application on the proliferation, osteogenic differentiation and bone mineral synthesis of human dental pulp stem cells (hDPSCs) seeded on IONP-CPC scaffold for the first time. The novel magnetic IONP-CPC under SMF enhanced the cellular performance of hDPSCs, yielding greater alkaline phosphatase activities (about 3-fold), increased expressions of osteogenic marker genes, and more cell-synthesized bone minerals (about 2.5-fold), compared to CPC control and nonmagnetic IONP-CPC. In addition, IONP-CPC induced more active osteogenesis than CPC control in rat mandible defects. These results were consistent with the enhanced cellular performance by magnetic IONP in media under SMF. Moreover, nano-aggregates were detected inside the cells by transmission electron microscopy (TEM). Therefore, the enhanced cell performance was attributed to the physical forces generated by the magnetic field together with cell internalization of the released magnetic nanoparticles from IONP-CPC constructs.
机译:超顺磁性氧化铁纳米颗粒(IONP)是有前途的生物活性添加剂,用于制造用于骨组织工程的磁性支架。迄今为止,使用外部静态磁场(SMF)没有关于干细胞上的IONP掺入磷酸钙水泥(IONP-CPC)支架的骨诱导性的报道。本研究的目的是:(1)开发一种新型磁IONP-CPC构建体用于骨组织工程,(2)研究IONP掺入和SMF应用对人类增殖,骨质发生分化和骨矿物合成的影响第一次在IONP-CPC支架上播种的牙髓干细胞(HDPSC)。在SMF下的新型磁IONP-CPC增强了HDPSC的细胞性能,得到了更大的碱性磷酸酶活性(约3倍),骨质发生标记基因的增加的表达增加,以及更多的细胞合成的骨矿物(约2.5倍),相比CPC控制和非磁IONP-CPC。此外,IONP-CPC在大鼠下颌骨缺陷中诱导比CPC控制更活跃的成骨。这些结果与SMF下培养基中的磁IONP的增强细胞性能一致。此外,通过透射电子显微镜(TEM)在细胞内检测纳米聚集体。因此,增强的电池性能归因于由磁场产生的物理力以及来自IONP-CPC构建体的释放的磁性纳米粒子的细胞内化。

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