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Cell-free scaffolds with different stiffness but same microstructure promote bone regeneration in rabbit large bone defect model

机译:刚性不同但微观结构相同的无细胞支架在兔大骨缺损模型中促进骨再生

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To promote bone healing, bone repair biomaterials are increasingly designed to incorporate growth factors. However, the impact of matrix mechanics of cell-free scaffold independent of microstructure on the osteogenic differentiation of endogenous osteoprogenitor cells orchestrating bone repair and regeneration remains not to be fully understood. In our recent study, three-dimensional (3D) scaffolds with different stiffness but same microstructure have been successfully fabricated by coating decellularized bone with collagen/hydroxyapatite (HA) mixture with different collagen rations. It has been demonstrated that the scaffold with optimal stiffness can induce the osteogenic differentiation of MSCs in vitro and in the subcutaneous tissue. The present in vivo study further investigated the repair efficiency of these scaffolds in a rabbit radius with a critical-sized segmental defect model and its potential mechanism. Micro-computed tomography (-CT), X-ray and histological analysis were carried out to evaluate the repair capacity of these scaffolds. The results demonstrated that the cell-free scaffold with optimal stiffness incorporation of endogenous osteoprogenitor cells significantly promoted the repair and reconstruction quality of mass bone defect. One of the crucial mechanisms was that hypoxia and stromal cell-derived factor-1 (SDF-1) mediated mesenchymal stem cells (MSCs) migration by which matrix mechanics exerted influence on bone fracture healing. These findings suggested that only modulating the matrix stiffness of cell-free scaffold can be one of the most attractive strategies for promoting the progression of bone healing. (c) 2015 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 104A: 833-841, 2016.
机译:为了促进骨愈合,越来越多地设计了骨修复生物材料以结合生长因子。然而,无细胞支架的基质力学独立于微观结构对内源性骨祖细胞协调骨修复和再生的成骨分化的影响尚待充分了解。在我们最近的研究中,通过用具有不同胶原比例的胶原蛋白/羟基磷灰石(HA)混合物涂覆脱细胞的骨骼,已经成功地制造了具有不同刚度但具有相同微观结构的三维(3D)支架。已经证明具有最佳刚度的支架可以在体外和在皮下组织中诱导MSC的成骨分化。目前的体内研究进一步用临界尺寸的节段性缺损模型及其潜在机制研究了这些支架在兔radius骨中的修复效率。进行了微型计算机断层扫描(-CT),X射线和组织学分析,以评估这些支架的修复能力。结果表明,具有最佳硬度并结合内源性骨祖细胞的无细胞支架显着促进了块状骨缺损的修复和重建质量。关键机制之一是缺氧和基质细胞衍生因子1(SDF-1)介导的间充质干细胞(MSCs)迁移,基质力学由此影响骨折愈合。这些发现表明,仅调节无细胞支架的基质刚度可以是促进骨愈合进展的最有吸引力的策略之一。 (c)2015 Wiley Periodicals,Inc.J Biomed Mater Res Part A:104A:833-841,2016年。

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