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Enhanced Derivation of Osteogenic Cells from Murine Embryonic Stem Cells After Treatment with HepG2-Conditioned Medium and Modulation of the Embryoid Body Formation Period: Application to Skeletal Tissue Engineering

机译:HepG2条件培养基处理后对小鼠胚胎干细胞成骨细胞的增强衍生作用以及对胚状体形成时期的调节:在骨骼组织工程中的应用

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Despite the considerable progress made in directing embryonic stem cell (ESC) differentiation to therapeutically useful lineages, several issues remain to be resolved before ESCs can be used for cell therapy: 1) increasing the efficiency of specific lineage generation, and 2) developing time- and cost-effective culture systems for controlling ESC differentiation. Our study aimed to develop efficient methods to enhance mesodermal differentiation and thereby upregulate osteogenic differentiation of ESCs. Specifically, murine ESCs (mESCs) were cultured in the presence of 50% conditioned medium (CM) from the human hepatocarcinoma cell line HepG2, which resulted in enhanced mesoderm formation during embryoid body (EB) formation in the CM-treated mESCs (CM-mESCs). By varying the length of EB culture time, we achieved the selective control and stimulation of osteogenic differentiation and suppression of cardiogenic differentiation. Hence, reducing the EB culture of the CM-mESCs to 1 day resulted in 5-10-fold enhancement of osteogenic differentiation, as determined by bone nodule formation, higher alkaline phosphatase activity, the presence of well-organized osteoblast-cadherin in the bone nodules, and increased cbfa-l/runx2 gene expression. In contrast, increasing the EB culture of the CM-mESCs to 5 days resulted in three- to four-fold enhanced cardiogenic differentiation. These findings for development of highly efficient culture systems and protocols for mESC differentiation into osteogenic lineage that are time- and cost-effective can be used in skeletal tissue engineering applications.
机译:尽管在指导胚胎干细胞(ESC)分化为可用于治疗的谱系方面取得了巨大进展,但在将ESC用于细胞治疗之前,仍有几个问题需要解决:1)提高特定谱系生成的效率,以及2)开发时间-和经济有效的培养系统来控制ESC分化。我们的研究旨在开发有效的方法来增强中胚层分化,从而上调ESC的成骨分化。具体而言,在人类肝癌细胞系HepG2的50%条件培养基(CM)存在下培养鼠类胚胎干细胞(mESC),这会导致在经过CM处理的胚胎干细胞(CM- mESCs)。通过改变EB培养时间的长度,我们实现了成骨分化的选择性控制和刺激,以及心源性分化的抑制。因此,将CM-mESCs的EB培养减少到1天可导致成骨分化增强5-10倍,这取决于骨结节的形成,较高的碱性磷酸酶活性,骨骼中组织良好的成骨细胞钙黏着蛋白的存在。结节和cbfa-1 / runx2基因表达增加。相比之下,将CM-mESC的EB培养增加到5天会导致三倍到四倍的心源性分化。这些发现可用于开发高效的培养系统和将mESC分化为成骨谱系的方法,既省时又经济,可用于骨骼组织工程应用。

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