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Enhanced in Vivo Bone and Blood Vessel Formation byIron and Silicon Doped 3D printed Tricalcium Phosphate Scaffolds

机译:通过增强体内骨骼和血管形成铁和硅掺杂的3D打印磷酸三钙支架

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摘要

Calcium phosphate (CaP) ceramics show significant promise towards bone graft applications because of the compositional similarity to inorganic materials of bone. With 3D printing, it is possible to create ceramic implants that closely mimic the geometry of human bone and can be custom-designed for unusual injuries or anatomical sites. The objective of the study was to optimize the 3D-printing parameters for the fabrication of scaffolds, with complex geometry, made from synthesized tricalcium phosphate (TCP) powder. This study was also intended to elucidate the mechanical and biological effects of the addition of Fe+3 and Si+4 in TCP implants in a rat distal femur model for 4, 8, and 12 weeks. Doped with Fe+3 and Si+4 TCP scaffolds with 3D interconnected channels were fabricated to provide channels for micronutrients delivery and improved cell-material interactions through bioactive fixation. Addition of Fe+3 into TCP enhanced early-stage new bone formation by increasing type I collagen production. Neovascularization was observed in the Si+4 doped samples after 12 weeks. These findings emphasize that the additive manufacturing of scaffolds with complex geometry from synthesizedceramic powder with modified chemistry is feasible and may serve as a potentialcandidate to introduce angiogenic and osteogenic properties to CaPs, leading toaccelerated bone defect healing.
机译:磷酸钙(CaP)陶瓷由于其与骨骼无机材料的成分相似性,因此有望在骨移植中应用。借助3D打印,可以创建与人体骨骼的几何形状非常相似的陶瓷植入物,并且可以针对不寻常的损伤或解剖部位进行定制设计。该研究的目的是优化由合成的磷酸三钙(TCP)粉末制成的具有复杂几何形状的脚手架的3D打印参数。这项研究还旨在阐明在大鼠股骨远端模型4、8中,在TCP植入物中添加Fe +3 和Si +4 的机械和生物学作用。和12周。制备了掺有Fe +3 和Si +4 的TCP支架,该支架具有3D互连通道,以提供微量营养素输送通道,并通过生物活性固定改善了细胞与材料的相互作用。通过增加I型胶原蛋白的产生,在TCP中添加Fe +3 可以增强早期新骨的形成。 12周后,在掺杂了Si +4 的样品中观察到新血管形成。这些发现强调,合成的具有复杂几何形状的脚手架的增材制造化学修饰的陶瓷粉是可行的,并有潜力向CaPs引入血管生成和成骨特性的候选人加速骨缺损愈合。

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