Characterization of self-organized osteocytic spheroids using mouse osteoblast-like cells

Jeonghyun Kim, H. Kigami, T. Adachi
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引用次数: 7

Abstract

Osteocyte plays a central role as a commander in the bone to modulate bone remodeling processes. While the osteocyte is known to be differentiated from osteoblasts, understanding in mechanism of the osteocyte differentiation remained still poor. The aim of this study is to elucidate the osteocyte differentiation capability using three-dimensional (3D) cell culture technique. We first fabricated a self-organized spheroid reconstructed by mouse osteoblast-like cells by adjusting the number of subcultured cells in the round-bottom well. Compared to a conventional two-dimensional (2D) monolayer model, the 3D spheroid exerted greater osteocyte gene expressions in vitro within 2 days. As a result of the size-dependent experiment, there might be an appropriate cell-cell and cell-ECM interaction for osteoblast-like cells to induce the osteocytogenesis in the form of 3D spheroid culture. Moreover, the present model showed that the spheroid further exerted the prolonged osteocyte differentiation capability after a long period of incubation, 7 days. In conclusion, we characterized the self-organized osteocytic spheroids reconstructed by osteoblast-like cells and further suggested the potential application of the spheroid as a new in vitro tissue-engineered osteocytic model. an efficient model differentiation. imply that it is essential for the osteocyte differentiation of the cells to require a certain cellular where the cells encounter the appropriate cell-cell and cell-ECM interaction as in vivo processes such as unmineralized termed osteoid. Further study will be required to characterize the cellular environment in the spheroid with regard to its accumulation and also to elucidate the detailed mechanism of signal-transduction pathways for the differentiation achieved in the 3D culture system.
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利用小鼠成骨细胞样细胞表征自组织骨细胞球体
骨细胞在骨重建过程中起着重要的指挥作用。骨细胞可分化为成骨细胞,但其分化机制尚不清楚。本研究的目的是利用三维细胞培养技术阐明骨细胞的分化能力。我们首先通过调节圆底孔中传代细胞的数量,制备了由小鼠成骨样细胞重建的自组织球体。与传统的二维(2D)单层模型相比,3D球体在体外2天内表现出更大的骨细胞基因表达。大小依赖性实验结果表明,成骨细胞样细胞可能存在适当的细胞-细胞和细胞- ecm相互作用,以三维球体培养的形式诱导骨细胞发生。此外,本模型显示,经过长时间的培养(7天),球体进一步发挥了延长的骨细胞分化能力。总之,我们描述了由成骨细胞样细胞重建的自组织骨细胞球体,并进一步提出了这种球体作为一种新的体外组织工程骨细胞模型的潜在应用。一个有效的模型微分。这意味着骨细胞的分化需要一个特定的细胞,在那里细胞遇到适当的细胞-细胞和细胞- ecm相互作用,就像在体内的过程一样,如未矿化的称为类骨。需要进一步的研究来表征球体中细胞环境的积累,并阐明在三维培养系统中实现分化的信号转导途径的详细机制。
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来源期刊
Journal of Biomechanical Science and Engineering
Journal of Biomechanical Science and Engineering Engineering-Biomedical Engineering
CiteScore
0.90
自引率
0.00%
发文量
18
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