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Biocompatibility of platinum-based bulk metallic glass in orthopedic applications

机译:矫形应用中铂类块状金属玻璃的生物相容性

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Bulk metallic glasses (BMGs) are a class of amorphous metals that exhibit high strength, ductility paired with wear and corrosion resistance. These properties suggest that they could serve as an alternative to conventional metallic implants that suffer wear and failure. In the present study, we investigated Platinum (Pt)-BMG biocompatibility in bone applications. Specifically, we investigated osteoclast formation on flat and nanopatterned Pt57.5Cu14.7Ni5.3P22.5 (atomic percent) as well as titanium (control). Specifically, receptor activator of NF-kappa B (RANK) ligand-induced murine bone marrow derived mononuclear cell fusion was measured on multiple nanopatterns and was found to be reduced on nanorods (80 and 200 nm in diameter) and was associated with reduced tartrate-resistant acid phosphatase (TRAP) and matrix metalloproteinase (MMP9) expression. Evaluation of mesenchymal stem cell (MSC) to osteoblast differentiation on nanopatterned Pt-BMG showed significant reduction in comparison to flat, suggesting that further exploration of nanopatterns is required to have simultaneous induction of osteoblasts and inhibition of osteoclasts.In vivo studies were also pursued to evaluate the biocompatibility of Pt-BMG in comparison to titanium. Rods of each material were implanted in the femurs of mice and evaluated by x-ray, mechanical testing, micro-computed tomography (micro-CT), and histological analysis. Overall, Pt-BMG showed similar biocompatibility with titanium suggesting that it has the potential to improve outcomes by further processing at the nanoscale.
机译:散装金属眼镜(BMG)是一类具有高强度,延展性与耐磨性和耐腐蚀性相对的一类非晶金属。这些性质表明它们可以作为患有磨损和失败的传统金属植入物的替代品。在本研究中,我们研究了骨应用中的铂(Pt)-Bmg生物相容性。具体而言,我们研究了平面和纳米透明颗粒的PT57.5Cu14.7NI5.3P22.5(原子百分比)以及钛(对照)上的骨细胞形成。具体地,在多个纳米图案上测量NF-Kappa B(等级)配体诱导的鼠骨髓衍生的单核细胞融合的受体活化剂,发现在纳米棒(直径80nm)上减少并与降低的酒石酸盐相关抗性酸性磷酸酶(捕集物)和基质金属蛋白酶(MMP9)表达。与平坦的纳米透滞Pt-BMG对骨缩合卵细胞(MSC)对甲基坦的骨细胞分化的评价表明,与平坦的表明,纳米披透的进一步探测需要同时诱导成骨细胞和疏松骨粒细胞的抑制。体内研究也追求与钛相比,评价Pt-BMG的生物相容性。将每种材料的棒植入小鼠的股骨中,并通过X射线,机械测试,微计算机断层扫描(Micro-CT)和组织学分析评估。总体而言,PT-BMG显示出与钛的类似生物相容性,表明它具有通过在纳米级进一步加工通过进一步加工改善结果的可能性。

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