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Osteogenic and angiogenic potentials of the cell-laden hydrogel/mussel-inspired calcium silicate complex hierarchical porous scaffold fabricated by 3D bioprinting

机译:通过3D BioPlinting制造的细胞 - 升水水凝胶/贻贝式钙硅酸钙复合硅酸钙复合硅酸钙的成骨和血管生成潜力

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摘要

3D printing has been popularly used in the bone tissue engineering, as many of the biomaterials for this field of study can be prepared for and produced from this additive manufacturing technique. In this study, we strategized a solvent-free processing to fabricate the polydopamine-modified calcium silicate (PDACS)/poly-caprolactone (PCL) scaffold with Wharton's jelly mesenchymal stem cells (WJMSCs) incorporated with human umbilical vein endothelial cells (HUVEC)-laden hydrogel. The PDACS/PCL/hydrogel 3D scaffold yielded a Young's modulus of the 3D scaffolds as high as 75 MPa. In addition, the vascular morphogenesis and cellular behaviors regulated by our hybrid scaffolds were also intricately evaluated. Furthermore, the HUVEC in the bioink exhibited higher levels of angiogenic biomarkers and showed potential for the formation of complex vascular networks. Higher levels of bone formation proteins were also observed in our composites. Such a hybrid of synthetic materials with cell constituents not only enhances osteogenesis but also stimulates vessel network development in angiogenesis, presenting the fact that 3D printing can be further applied in improving bone tissue regeneration in numerous aspects. We believe that this method may serve as a useful and effective approach for the regeneration of defective complex hard tissues in deep bone structures.
机译:3D打印已普遍用于骨组织工程中,因为可以从这种添加剂制造技术制备和生产该研究领域的许多生物材料。在这项研究中,我们制定了一种无溶剂加工,以制造与沃顿果冻间充质干细胞(WJMSCs)的聚二胺改性硅酸钙(PCL)/聚己内酯(PCL)支架与人脐静脉内皮细胞(HUVEC) - Laden水凝胶。 PDACS / PCL / HYDROGEL 3D支架产生3D支架的杨氏模量高达75MPa。此外,我们的杂交支架调节的血管形态发生和细胞行为也被复杂地评估。此外,生物链中的HUVEC表现出更高水平的血管生成生物标志物,并显示出复杂的血管网络形成的潜力。在我们的复合材料中也观察到更高水平的骨形成蛋白。这种具有细胞成分的合成材料的混合性不仅增强了骨发生,而且刺激血管生成中的血管网络发育,呈现3D打印可以进一步应用于改善许多方面的骨组织再生。我们认为这种方法可以作为深骨结构中缺陷复合硬组织再生的有用有效的方法。

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