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首页> 外文期刊>Journal of Materials Chemistry, B. materials for biology and medicine >The outstanding mechanical response and bone regeneration capacity of robocast dilute magnesium-doped wollastonite scaffolds in critical size bone defects
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The outstanding mechanical response and bone regeneration capacity of robocast dilute magnesium-doped wollastonite scaffolds in critical size bone defects

机译:机械铸造稀镁掺杂硅灰石支架在临界骨缺损中的出色力学响应和骨​​再生能力

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The regeneration and repair of damaged load-bearing segmental bones require considerable mechanical strength for the artificial implants. The ideal biomaterials should also facilitate the production of porous implants with high bioactivity desirable for stimulating new bone growth. Here we developed a new mechanically strong, highly bioactive dilute magnesium-doped wollastonite (CaSiO3-Mg; CSi-Mg) porous scaffold by the robocasting technique. The sintered scaffolds had interconnected pores 350 mm in size and over 50% porosity with appreciable compressive strength (> 110 MPa), 5-10 times higher than those of pure CSi and beta-TCP porous ceramics. Extensive in vitro and in vivo investigations revealed that such Ca-silicate bioceramic scaffolds were particularly beneficial for osteogenic cell activity and osteogenic capacity in critical size femoral bone defects. The CSi-Mg porous constructs were accompanied by an accelerated new bone growth (6-18 weeks) and a mechanically outstanding elastoplastic response to finally match the strength (10-15 MPa) of the rabbit femur host bone after 18 weeks, and the material itself experienced mild resorption and apatite-like phase transformation. In contrast, the new bone regeneration in the b-TCP scaffolds was substantially retarded after 6-12 weeks of implantation, and exhibited a low level of mechanical strength (< 10 MPa) similar to the pure CSi scaffolds. These results suggest a promising application of robocast CSi-Mg scaffolds in the clinic, especially for the load-bearing bone defects.
机译:受损的承重节段骨的再生和修复要求人造植入物具有相当大的机械强度。理想的生物材料还应有助于生产具有高生物活性的多孔植入物,以刺激新的骨骼生长。在这里,我们通过机械浇铸技术开发了一种新型的机械强度高,生物活性强的稀镁掺杂硅灰石(CaSiO3-Mg; CSi-Mg)多孔支架。烧结支架的互连孔尺寸为350 mm,孔隙率超过50%,具有明显的抗压强度(> 110 MPa),是纯CSi和β-TCP多孔陶瓷的5-10倍。广泛的体外和体内研究表明,这种钙硅酸盐生物陶瓷支架对关键尺寸的股骨缺损的成骨细胞活性和成骨能力特别有益。 CSi-Mg多孔结构伴随新骨生长加快(6-18周)和机械上出色的弹塑性响应,以最终匹配18周后兔股骨宿主骨的强度(10-15 MPa),并且材料本身经历了温和的吸收和类似磷灰石的相变。相比之下,在植入6至12周后,b-TCP支架中的新骨再生被显着延迟,并且与纯CSi支架相似,其机械强度较低(<10 MPa)。这些结果表明,Robocast CSi-Mg支架有望在临床中得到广泛应用,尤其是在承重骨缺损方面。

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