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Biofabrication of SDF-1 Functionalized 3D-Printed Cell-Free Scaffolds for Bone Tissue Regeneration

机译:用于骨骼组织再生的SDF-1功能化3D打印的无细胞支架的生物制造

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摘要

Large segmental bone defects occurring after trauma, bone tumors, infections or revision surgeries are a challenge for surgeons. The aim of our study was to develop a new biomaterial utilizing simple and cheap 3D-printing techniques. A porous polylactide (PLA) cylinder was printed and functionalized with stromal-derived factor 1 (SDF-1) or bone morphogenetic protein 7 (BMP-7) immobilized in collagen type I. Biomechanical testing proved biomechanical stability and the scaffolds were implanted into a 6 mm critical size defect in rat femur. Bone growth was observed via x-ray and after 8 weeks, bone regeneration was analyzed with µCT and histological staining methods. Development of non-unions was detected in the control group with no implant. Implantation of PLA cylinder alone resulted in a slight but not significant osteoconductive effect, which was more pronounced in the group where the PLA cylinder was loaded with collagen type I. Addition of SDF-1 resulted in an osteoinductive effect, with stronger new bone formation. BMP-7 treatment showed the most distinct effect on bone regeneration. However, histological analyses revealed that newly formed bone in the BMP-7 group displayed a holey structure. Our results confirm the osteoinductive character of this 3D-biofabricated cell-free new biomaterial and raise new options for its application in bone tissue regeneration.
机译:外伤,骨肿瘤,感染或翻修手术后发生的大型节段性骨缺损是外科医生的挑战。我们研究的目的是利用简单且廉价的3D打印技术开发一种新的生物材料。印刷多孔聚丙交酯(PLA)圆柱并用基质衍生因子1(SDF-1)或固定在I型胶原上的骨形态发生蛋白7(BMP-7)进行功能化。生物力学测试证明了生物力学稳定性,并将支架植入了动物大鼠股骨6 mm临界尺寸缺损。 X射线观察骨生长,8周后,用µCT和组织学染色方法分析骨再生。在没有植入物的对照组中检测到不愈合。单独植入PLA圆柱体会产生轻微但不明显的骨传导作用,在PLA圆柱体中装有I型胶原的组中更为明显。添加SDF-1会产生骨诱导作用,并具有更强的新骨形成。 BMP-7处理对骨再生显示出最明显的作用。然而,组织学分析显示,BMP-7组中新形成的骨头显示出多孔结构。我们的结果证实了这种3D生物制造的无细胞新型生物材料的骨诱导特性,并为其在骨组织再生中的应用提出了新的选择。

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