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首页> 外文期刊>BMC Musculoskeletal Disorders >3D printing of dual-cell delivery titanium alloy scaffolds for improving osseointegration through enhancing angiogenesis and osteogenesis
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3D printing of dual-cell delivery titanium alloy scaffolds for improving osseointegration through enhancing angiogenesis and osteogenesis

机译:双细胞输送钛合金支架的3D印刷通过增强血管生成和卵形发生改善骨整合

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The repair of large bone defects is a great challenge for orthopedics. Although the development of three-dimensional (3D) printed titanium alloy (Ti6Al4V) implants with optimized the pore structure have effectively promoted the osseointegration. However, due to the biological inertia of Ti6Al4Vsurface and the neglect of angiogenesis, some patients still suffer from postoperative complications such as dislocation or loosening of the prosthesis. The purpose of this study was to construct 3D printed porous Ti6Al4V scaffolds filled with bone marrow mesenchymal stem cells (BMSC) and endothelial progenitor cells (EPC) loaded hydrogel and evaluate the efficacy of this composite implants on osteogenesis and angiogenesis, thus promoting osseointegration. The porosity and pore size of prepared 3D printed porous Ti6Al4V scaffolds were 69.2?±?0.9?% and 593.4?±?16.9?μm, respectively, which parameters were beneficial to bone ingrowth and blood vessel formation. The BMSC and EPC filled into the pores of the scaffolds after being encapsulated by hydrogels can maintain high viability. As a cell containing composite implant, BMSC and EPC loaded hydrogel incorporated into 3D printed porous Ti6Al4V scaffolds enhancing osteogenesis and angiogenesis to repair bone defects efficiently. At the transcriptional level, the composite implant up-regulated the expression levels of the osteogenesis-related genes alkaline phosphatase (ALP) and osteocalcin (OCN), and angiogenesis-related genes hypoxia-inducible factor 1 alpha (HIF-1α), and vascular endothelial growth factor (VEGF). Overall, the strategy of loading porous Ti6Al4V scaffolds to incorporate cells is a promising treatment for improving osseointegration.
机译:大骨缺陷的修复是对骨科的巨大挑战。虽然具有优化孔隙结构的三维(3D)印刷的钛合金(Ti6Al4V)植入物的发展已经有效地促进了骨整合。然而,由于Ti6Al4Vsurface的生物惯性和血管生成的疏忽,一些患者仍然患有术后并发症,如假体的错位或松动。本研究的目的是构建填充有骨髓间充质干细胞(BMSC)和内皮祖细胞(EPC)的3D印刷多孔Ti6Al4V支架,并加载水凝胶,并评估该复合植入物对成骨发生和血管生成的功效,从而促进骨整合。所制备的3D印刷多孔Ti6A14V支架的孔隙率和孔径分别为69.2≤0.9μm,分别为593.4〜±16.9Ω·4μm,该参数有利于骨骼生长和血管形成。填充到水凝胶包封后填充到支架孔中的BMSC和EPC可以保持高可行性。作为含有复合植入物的细胞,BMSC和EPC加载的水凝胶掺入3D印刷多孔Ti6Al4V支架中,增强骨肉发生和血管生成,以有效地修复骨缺陷。在转录水平上,复合材料植入植入骨质发生相关基因碱性磷酸酶(ALP)和骨钙素(OCN)的表达水平,以及血管生成相关基因缺氧诱导因子1α(HIF-1α)和血管内皮生长因子(VEGF)。总之,加载多孔Ti6Al4V支架掺入细胞的策略是改善骨整合的有希望的处理。

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