首页> 外文期刊>The Journal of craniofacial surgery >Optimizing Collagen Scaffolds for Bone Engineering: Effects of Cross-linking and Mineral Content on Structural Contraction and Osteogenesis
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Optimizing Collagen Scaffolds for Bone Engineering: Effects of Cross-linking and Mineral Content on Structural Contraction and Osteogenesis

机译:优化骨工程胶原蛋白支架:交联和矿物质含量对结构收缩和成骨的影响。

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Introduction:Osseous defects of the craniofacial skeleton occur frequently in congenital, posttraumatic, and postoncologic deformities. The field of scaffold-based bone engineering emerged to address the limitations of using autologous bone for reconstruction of such circumstances. In this work, the authors evaluate 2 modifications of three-dimensional collagen-glycosaminoglycan scaffolds in an effort to optimize structural integrity and osteogenic induction.Methods:Human mesenchymal stem cells (hMSCs) were cultured in osteogenic media on nonmineralized collagen-glycosaminoglycan (C-GAG) and nanoparticulate mineralized collagen-glycosaminoglycan (MC-GAG) type I scaffolds, in the absence and presence of cross-linking. At 1, 7, and 14 days, mRNA expression was analyzed using quantitative real-time -reverse-transcriptase polymerase chain reaction for osteocalcin (OCN) and bone sialoprotein (BSP). Structural contraction was measured by the ability of the scaffolds to maintain their original dimensions. Mineralization was detected by microcomputed tomographic (micro-CT) imaging at 8 weeks. Statistical analyses were performed with Student t-test.Results:Nanoparticulate mineralization of collagen-glycosaminoglycan scaffolds increased expression of both OCN and BSP. Cross-linking of both C-GAG and MC-GAG resulted in decreased osteogenic gene expression; however, structural contraction was significantly decreased after cross-linking. Human mesenchymal stem cells-directed mineralization, detected by micro-CT, was increased in nanoparticulate mineralized scaffolds, although the density of mineralization was decreased in the presence of cross-linking.Conclusions:Optimization of scaffold material is an essential component of moving toward clinically translatable engineered bone. Our current study demonstrates that the combination of nanoparticulate mineralization and chemical cross-linking of C-GAG scaffolds generates a highly osteogenic and structurally stable scaffold.
机译:简介:颅面部骨骼的骨缺损常发生在先天性,创伤后和肿瘤后畸形中。基于支架的骨工程学领域出现了,以解决使用自体骨重建这种情况的局限性。在这项工作中,作者评估了2种对三维胶原蛋白-糖胺聚糖支架的修饰,以优化结构完整性和成骨诱导。方法:将人间充质干细胞(hMSCs)在成矿培养基中的非矿化胶原蛋白-糖胺聚糖(C- GAG)和I型纳米矿化胶原蛋白-糖胺聚糖(MC-GAG)支架,不存在和存在交联。在第1、7和14天,使用定量实时逆转录酶聚合酶链反应分析骨钙素(OCN)和骨唾液蛋白(BSP)的mRNA表达。通过支架保持其原始尺寸的能力来测量结构收缩。在8周时通过微型计算机断层扫描(micro-CT)成像检测到矿化。结果:胶原-糖胺聚糖支架的纳米颗粒矿化增加了OCN和BSP的表达。 C-GAG和MC-GAG的交联导致成骨基因表达下降;然而,交联后结构收缩显着降低。尽管在交联的情况下矿化密度降低,但通过微CT检测到的人间充质干细胞定向矿化在纳米颗粒矿化支架中有所增加。结论:支架材料的优化是临床上必不可少的组成部分可翻译的工程骨。我们当前的研究表明,纳米颗粒矿化和C-GAG支架的化学交联相结合可产生高度成骨性和结构稳定的支架。

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