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The effect of a bionic bone ionic environment on osteogenesis, osteoimmunology, and in situ bone tissue engineering

骨免疫学 间质细胞 骨组织 骨细胞 间充质干细胞 矿化(土壤科学) 化学 细胞生物学 材料科学 组织工程 生物医学工程 生物 生物化学 内科学 医学 有机化学 基因 激活剂(遗传学) 氮气 兰克尔
作者
Yuqing Mu,Zhen-Lan Du,Weiqi Gao,Lan Xiao,Ross Crawford,Yin Xiao
出处
期刊:Biomaterials [Elsevier]
卷期号:304: 122410-122410
标识
DOI:10.1016/j.biomaterials.2023.122410
摘要

Bone, a mineralized tissue, continuously undergoes remodeling, a process that engages the mineralization and demineralization of the bone matrix, orchestrated by the interactions among cells and cell-secreted biomolecules under the bone ionic microenvironment. The osteoinductive properties of the demineralized organic bone matrix and many biological factors have been well-investigated. However, the impact of the bone ionic environment (BIE) on cell differentiation and osteogenesis remains largely unknown. In this study, we extracted and isolated inorganic bone components (bone-derived monetite, BM) using a low-temperature method and, for the first time, investigated whether the BIE could actively affect cell differentiation and regulate osteoimmune reactions. It was evidenced that the BIE could foster the osteogenesis of human bone marrow stromal cells (hBMSCs) and promote hBMSCs mineralization without using osteogenic inductive agents. Interestingly, it was noted that BIE resulted in intracellular mineralization, evidenced by intracellular accumulation of carbonate hydroxyapatite similar to osteoblasts cultured in the osteoinductive media. Additionally, BIE was found to enhance osteogenesis by generating a favorable osteoimmune environment. In a rat calvarial bone defect model, the osteogenic capacity of BIE was evaluated using a collagen type I-impregnated BM (Col-BM) composite. It is shown that Col-BM significantly promoted new bone formation in the critical-size bone defect areas. Taken together, this is the first study that investigated the influence of the BIE on osteogenesis, osteoimmunology, and in situ bone tissue engineering. The innate osteoinductive potential of inorganic bone components, both in vitro and in vivo, not only expands the understanding of the BIE on osteogenesis but also benefits future biomaterials engineering for bone tissue regeneration.
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