Ceramic Physics Laboratory, Kyoto Institute of Technology, Sakyo-ku, Matsugasaki, Kyoto 606-8585, Japan.
Department of Orthopedic Surgery, Tokyo Medical University, 6-7-1 Nishi-Shinjuku, Shinjuku-ku, Tokyo 160-0023, Japan.
Int J Mol Sci. 2019 Aug 21;20(17):4080. doi: 10.3390/ijms20174080.
The availability of osteoinductive biomaterials has encouraged new therapies in bone regeneration and has potentially triggered paradigmatic shifts in the development of new implants in orthopedics and dentistry. Among several available synthetic biomaterials, bioceramics have gained attention for their ability to induce mesenchymal cell differentiation and successive bone formation when implanted in the human body. However, there is currently a lack of understanding regarding the fundamental biochemical mechanisms by which these materials can induce bone formation. Phenomenological studies of retrievals have clarified the final effect of bone formation, but have left the chemical interactions at the cell-material interface uncharted. Accordingly, the knowledge of the intrinsic material properties relevant for osteoblastogenesis and osteoinduction remains incomplete. Here, we systematically monitored the chemistry of mesenchymal cell metabolism and the ionic exchanges during osteoblastogenesis on selected substrates through conventional biological assays as well as via and spectroscopic techniques. Accordingly, the chemical behavior of different bioceramic substrates during their interactions with mesenchymal cells could be unfolded and compared with that of biomedical titanium alloy. Our goal was to clarify the cascade of chemical equations behind the biological processes that govern osteoblastogenic effects on different biomaterial substrates.
骨诱导生物材料的出现鼓励了骨再生的新疗法,并有可能引发矫形和牙科领域中新型植入物开发的范式转变。在几种可用的合成生物材料中,生物陶瓷因其在植入人体时能够诱导间充质细胞分化和随后的骨形成而受到关注。然而,目前对于这些材料如何诱导骨形成的基本生化机制还缺乏了解。回收研究的现象学研究阐明了骨形成的最终效果,但细胞-材料界面的化学相互作用仍未被揭示。因此,与成骨细胞发生和骨诱导相关的内在材料特性的知识仍然不完整。在这里,我们通过常规生物学测定以及 和 光谱技术系统地监测了选定基底上成骨细胞发生过程中间充质细胞代谢和离子交换的化学变化。因此,可以展开不同生物陶瓷基底与间充质细胞相互作用过程中的化学行为,并与生物医学钛合金进行比较。我们的目标是阐明控制不同生物材料基底上成骨细胞效应的生物学过程背后的化学反应级联。