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Biomineralization of a self-assembled extracellular matrix for bone tissue engineering.

机译:自组装的细胞外基质用于骨组织工程的生物矿化。

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Understanding how biomineralization occurs in the extracellular matrix (ECM) of bone cells is crucial to the understanding of bone formation and the development of a successfully engineered bone tissue scaffold. It is still unclear how ECM mechanical properties affect protein-mineral interactions in early stages of bone mineralization. We investigated the longitudinal mineralization properties of MC3T3-E1 cells and the elastic modulus of their ECM using shear modulation force microscopy, synchrotron grazing incidence X-ray diffraction (GIXD), scanning electron microscopy, energy dispersive X-ray spectroscopy, and confocal laser scanning microscopy (CLSM). The elastic modulus of the ECM fibers underwent significant changes for the mineralizing cells, which were not observed in the nonmineralizing cells. On substrates conducive to ECM network production, the elastic modulus of mineralizing cells increased at time points corresponding to mineral production, whereas that of the nonmineralizing cells did not vary over time. The presence of hydroxyapatite in mineralizing cells and the absence thereof in the nonmineralizing ones were confirmed by GIXD, and CLSM showed that a restructuring of actin occurred only for mineral-producing cells. These results show that the correct and complete development of the ECM network is required for osteoblasts to mineralize. This in turn requires a suitably prepared synthetic substrate for bone development to succeed in vitro.
机译:了解生物矿化如何在骨细胞的细胞外基质(ECM)中发生对于理解骨形成和成功设计的骨组织支架的开发至关重要。尚不清楚ECM的机械性能如何影响骨骼矿化早期的蛋白质-矿物质相互作用。我们使用剪切调制力显微镜,同步加速器掠入射X射线衍射(GIXD),扫描电子显微镜,能量色散X射线光谱和共聚焦激光扫描研究了MC3T3-E1细胞的纵向矿化特性及其ECM的弹性模量显微镜(CLSM)。对于矿化细胞,ECM纤维的弹性模量发生了显着变化,这在非矿化细胞中未观察到。在有利于ECM网络生产的基质上,矿化细胞的弹性模量在对应于矿物质生产的时间点增加,而非矿化细胞的弹性模量不会随时间变化。 GIXD证实了矿化细胞中羟基磷灰石的存在和非矿化细胞中羟基磷灰石的不存在,CLSM表明肌动蛋白仅在产生矿物质的细胞中发生重组。这些结果表明,成骨细胞矿化需要ECM网络正确而完整的发展。反过来,这需要适当制备的合成基质用于骨骼发育才能在体外成功。

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