3D Printed Platelet-Rich Plasma-Loaded Scaffold with Sustained Cytokine Release for Bone Defect Repair.

Chun Liu, Ziyue Peng, Haixia Xu, Huiling Gao, Jianjun Li, Yanglei Jin, Yihan Wang, Chengqiang Wang, Yang Liu, Yunteng Hu, Cong Jiang, Jiasong Guo, Lixin Zhu
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引用次数: 7

Abstract

The combination of three-dimensional (3D) printed scaffold materials and various cytokines can achieve the purpose of tissue reconstruction more efficiently. In this study, we prepared platelet-rich plasma (PRP)/gelatin microspheres combined with 3D printed polycaprolactone/β-tricalcium phosphate scaffolds to solve the key problem that PRP cannot be released under control and the release time is too short, and thus better promote bone repair. Consequently, the composite scaffold displayed a good mechanical property and sustained cytokine release for ∼3 weeks. Increased survival, proliferation, migration, and osteogenic and angiogenic differentiation of bone marrow mesenchymal stem cells were observed compared with the control groups. The in vivo study demonstrated that the composite scaffold with PRP/gelatin microspheres led to greater positive effects in promoting large bone defect repair. In conclusion, in this study, a new type of PRP long-term sustained-release composite scaffold material was constructed that effectively improved the survival, proliferation, and differentiation of cells in the transplanted area, thereby better promoting the repair of large bone defects. Impact statement Reconstruction of bone tissue and blood vessels at bone defects takes time. Platelet-rich plasma (PRP) has been widely used in bone defect repair because it contains a variety of cytokine that can promote local osteogenesis and angiogenesis. In this study, we constructed a new type of polycaprolactone/β-tricalcium phosphate/PRP/gelatin scaffold to solve the predicament of short cytokine release time in PRP-related materials. We proved that this scaffold can not only achieve long-term PRP-related cytokine release (more than 3 weeks) but also promote osteogenesis and bone defect repair. We believe that this is a novel concept of developing the sustained PRP-related cytokine releasing bioscaffold for treating large bone defect.

具有持续细胞因子释放的3D打印富血小板血浆支架用于骨缺损修复。
3D打印支架材料与多种细胞因子的结合可以更有效地达到组织重建的目的。本研究通过制备富血小板血浆(PRP)/明胶微球结合3D打印聚己内酯/β-磷酸三钙支架,解决了PRP释放不受控制、释放时间过短的关键问题,从而更好地促进骨修复。因此,复合支架表现出良好的力学性能和持续3周的细胞因子释放。与对照组相比,观察到骨髓间充质干细胞的存活、增殖、迁移、成骨和血管生成分化增加。体内研究表明,PRP/明胶微球复合支架在促进大骨缺损修复方面具有更大的积极作用。综上所述,本研究构建了一种新型PRP长效缓释复合支架材料,有效提高了移植区细胞的存活、增殖和分化,从而更好地促进了大骨缺损的修复。骨缺损处骨组织和血管的重建需要时间。富血小板血浆(PRP)因其含有多种促进局部成骨和血管生成的细胞因子而被广泛应用于骨缺损修复。本研究构建了一种新型聚己内酯/β-磷酸三钙/PRP/明胶支架,解决了PRP相关材料中细胞因子释放时间短的困境。我们证明该支架不仅能长期释放prp相关细胞因子(3周以上),还能促进成骨和骨缺损修复。我们认为这是开发持续释放prp相关细胞因子的生物支架治疗大骨缺损的一个新概念。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Tissue Engineering Part A
Tissue Engineering Part A CELL & TISSUE ENGINEERING-BIOTECHNOLOGY & APPLIED MICROBIOLOGY
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