首页> 外文期刊>International Journal of Nanomedicine >Porous Se@SiO 2 nanocomposite promotes migration and osteogenic differentiation of rat bone marrow mesenchymal stem cell to accelerate bone fracture healing in a rat model
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Porous Se@SiO 2 nanocomposite promotes migration and osteogenic differentiation of rat bone marrow mesenchymal stem cell to accelerate bone fracture healing in a rat model

机译:多孔Se @ SiO 2纳米复合材料促进大鼠骨髓间充质干细胞迁移和成骨分化,促进大鼠模型的骨折愈合

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Background: Delay or failure of bone union is a significant clinical challenge all over the world, and it has been reported that bone marrow mesenchymal stem cells (BMSCs) offer a promising approach to accelerate bone fracture healing. Se can modulate the proliferation and differentiation of BMSCs. Se-treatment enhances the osteoblastic differentiation of BMSCs and inhibiting the differentiation and formation of mature osteoclasts. The purpose of this study was to assess the effects of porous Se@SiOsub2/sub?nanocomposite on bone regeneration and the underlying biological mechanisms. Methods: We oxidized Sesup2-,/sup?to develop Se quantum dots, then we used the Se quantum dots to form a solid Se@SiOsub2/sub?nanocomposite which was then coated with polyvinylpyrrolidone (PVP) and etched in hot water to synthesize porous Se@SiOsub2/sub?nanocomposite. We used XRD pattern to assess the phase structure of the solid Se@SiOsub2/sub?nanocomposite. The morphology of porous Se@SiOsub2/sub?nanocomposite were evaluated by scanning electron microscope (SEM) and the biocompatibility of porous Se@SiOsub2/sub?nanocomposite were investigated by cell counting kit-8 (CCK-8) assays. Then, a release assay was also performed. We used a Transwell assay to determine cell mobility in response to the porous Se@SiOsub2/sub?nanocomposite. For in vitro experiments, BMSCs were divided into four groups to detect reactive oxygen species (ROS)?generation, cell apoptosis, alkaline phosphatase activity, calcium deposition, gene activation and protein expression. For in vivo experiments, femur fracture model of rats was constructed to assess the osteogenic effects of porous Se@SiOsub2/sub?nanocomposite. Results: In vitro, intervention with porous Se@SiOsub2/sub?nanocomposite can promote migration and osteogenic differentiation of BMSCs, and protect BMSCs against Hsub2/subOsub2/sub-induced inhibition of osteogenic differentiation. In vivo, we demonstrated that the porous Se@SiOsub2/sub?nanocomposite accelerated bone fracture healing using a rat femur fracture model. Conclusion: Porous Se@SiOsub2/sub?nanocomposite promotes migration and osteogenesis differentiation of rat BMSCs and?accelerates?bone fracture healing, and porous Se@SiOsub2/sub?nanocomposite may provide clinic benefit for bone tissue engineering.
机译:背景:骨融合的延迟或失败是世界范围内的一项重大临床挑战,并且据报道,骨髓间充质干细胞(BMSC)提供了一种有希望的方法来加速骨折愈合。硒可以调节BMSCs的增殖和分化。硒处理可增强BMSCs的成骨细胞分化,并抑制成熟破骨细胞的分化和形成。这项研究的目的是评估多孔Se @ SiO 2 ?纳米复合材料对骨再生的影响及其潜在的生物学机制。方法:我们氧化Se 2-,?以形成Se量子点,然后使用Se量子点形成固体Se @ SiO 2 ?纳米复合材料,然后对其进行涂覆用聚乙烯吡咯烷酮(PVP)并在热水中蚀刻以合成多孔Se @ SiO 2 ?纳米复合材料。我们使用X射线衍射图谱来评估固体Se @ SiO 2 ?纳米复合材料的相结构。用扫描电子显微镜(SEM)评价了多孔Se @ SiO 2 纳米复合材料的形貌,并通过细胞计数试剂盒研究了多孔Se @ SiO 2 纳米复合材料的生物相容性。 -8(CCK-8)分析。然后,还进行了释放测定。我们用Transwell法测定了响应多孔Se @ SiO 2 ?纳米复合材料的细胞迁移率。为了进行体外实验,将骨髓间充质干细胞分为四组,以检测活性氧(ROS)?的生成,细胞凋亡,碱性磷酸酶活性,钙沉积,基因激活和蛋白质表达。为了进行体内实验,建立了大鼠股骨骨折模型,以评价多孔Se @ SiO 2 ?纳米复合材料的成骨作用。结果:在体外,多孔Se @ SiO 2 ?纳米复合材料的干预可促进BMSCs的迁移和成骨分化,并保护其免受H 2 O 2 的侵袭。诱导的成骨分化抑制。在体内,我们证明了使用大鼠股骨骨折模型,多孔Se @ SiO 2 ?纳米复合材料可促进骨折愈合。结论:多孔Se @ SiO 2 ?纳米复合材料促进大鼠骨髓间充质干细胞迁移和成骨分化并促进骨骨折愈合,而多孔Se @ SiO 2 ?纳米复合材料可为临床提供参考有益于骨组织工程。

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