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Establishment of Three-Dimensional Tissue-engineered Bone Constructs Under Microgravity-simulated Conditions

机译:微重力模拟条件下三维组织工程骨结构的建立

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Bone constructs have been grown in vitro with use of isolated cells, biodegradable polymer scaffolds, and bioreactors. In our work, the relationships between the composition and mechanical properties of engineered bone constructs were studied by culturing bone marrow mesenchymal stem cells (BMSCs) on ceramic bovine bone scaffolds in different environments: static flasks and dynamic culture system in rotating vessels—which was a National Aeronautics and Space Administration-recommended, ground-based, microgravity-simulating system. After 15 days of cultivation, osteogenicity was determined according to DNA and alkaline phosphatase (ALP) analysis. DNA content and ALP were higher for cells grown on dynamic culture. Subsequently, the two kinds of engineered bone constructs were selected for transplantation into Sprague-Dawley rat cranial bone defects. After 24 weeks of in vivo implantation, the engineered bone constructs under dynamic culture were found to repair the defects better, with the engineered constructs showing histologically better bone connection. Thus, this dynamic system provides a useful in vitro model to construct the functional role and effects of osteogenesis in the proliferation, differentiation, and maturation of BMSCs. These findings suggest that the hydrodynamic microgravity conditions in tissue-culture bioreactors can modulate the composition, morphology, and function of the engineered bone.
机译:使用分离的细胞,可生物降解的聚合物支架和生物反应器,可在体外培养骨构建体。在我们的工作中,通过在不同环境下在陶瓷牛骨支架上培养骨髓间充质干细胞(BMSC)来研究工程骨构建体的成分与力学性能之间的关系:静态烧瓶和旋转容器中的动态培养系统。国家航空航天局推荐的地面微重力模拟系统。培养15天后,根据DNA和碱性磷酸酶(ALP)分析确定成骨性。动态培养中生长的细胞的DNA含量和ALP较高。随后,选择了两种工程骨构建体移植到Sprague-Dawley大鼠颅骨缺损中。体内植入24周后,发现动态培养的工程骨构建体可以更好地修复缺损,并且工程构建体显示出组织学上更好的骨骼连接。因此,该动态系统提供了有用的体外模型,以构建成骨作用在BMSC增殖,分化和成熟中的功能作用和作用。这些发现表明,组织培养生物反应器中的流体动力学微重力条件可以调节工程骨骼的组成,形态和功能。

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