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Novel fabrication of porous titanium by a resin-impregnated titanium substitution technique for bone reconstruction

机译:树脂浸渍钛取代技术对多孔钛进行多孔钛的制造

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摘要

The purpose of this study was to develop a novel porous titanium material with superior mechanical strength and osteoconduction for bone reconstruction. Porous titanium samples were fabricated by titanium-slurry impregnate to prepare urethane forms with several porosities (high-porosity; 92%, middle-porosity; 85% and low-porosity; 65%). Porous HA (mean porosity; 75.3%) was used as a control. To evaluate the characteristics of these materials, we performed porosity measurements, scanning electron microscopy (SEM), three-point bending testing, and cell proliferation assays. To evaluate the osteoconduction ability, porous titanium was placed into the femurs of rabbits and histological and histomorphometric evaluations were performed after 3 weeks. In SEM images, porous three-dimensional structures were observed in all samples. The bending strength significantly increased as porosity increased (Ti-65 Ti-85 porous HA Ti-92, P 0.05; respectively). Ti-65, Ti-85, and porous HA showed good cell proliferation. Newly formed bone was observed in the central portion of Ti-65, Ti-85, and porous HA. Ti-92 was mainly detected in the bone marrow tissue. The bone formation areas of Ti-65, Ti-85, and porous HA were significantly higher than that of Ti-92 (P 0.05). It was suggested that novel developed porous titanium composed of Ti-65 and Ti-85 showed superior mechanical strength and osteoconduction.
机译:本研究的目的是开发一种新型多孔钛材料,具有优越的机械强度和骨骼重建的骨切换。通过钛 - 浆料浸渍制造多孔钛样品,以制备具有多个孔隙症的氨基甲酸酯形式(高孔隙率; 92%,中孔隙率; 85%和低孔隙率; 65%)。多孔HA(平均孔隙度; 75.3%)用作对照。为了评估这些材料的特性,我们进行了孔隙率测量,扫描电子显微镜(SEM),三点弯曲试验和细胞增殖测定。为了评估骨液驱动能力,将多孔钛置于兔的股骨中,组织学和组织学和组织学和组织学评价在3周后进行。在SEM图像中,在所有样品中观察到多孔三维结构。弯曲强度随着孔隙率增加而显着增加(Ti-65& Ti-85& Ti-92,P <0.05; 0.05; 0.05; 0.05; 0.05; TI-65,TI-85和多孔HA显示出良好的细胞增殖。在Ti-65,Ti-85和多孔HA的中央部分观察到新形成的骨。 TI-92主要检测在骨髓组织中。 Ti-65,Ti-85和多孔HA的骨形成区域显着高于Ti-92(P <0.05)。建议,新型开发的多孔钛由Ti-65和Ti-85组成,显示出优异的机械强度和骨质化。

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  • 来源
    《RSC Advances》 |2019年第3期|共7页
  • 作者单位

    Hiroshima Univ Grad Sch Biomed &

    Hlth Sci Dept Adv Prosthodont Minami Ku 1-2-3 Kasumi Hiroshima 7348553 Japan;

    Hiroshima Univ Grad Sch Biomed &

    Hlth Sci Dept Adv Prosthodont Minami Ku 1-2-3 Kasumi Hiroshima 7348553 Japan;

    Hiroshima Univ Grad Sch Biomed &

    Hlth Sci Dept Adv Prosthodont Minami Ku 1-2-3 Kasumi Hiroshima 7348553 Japan;

    Hiroshima Univ Grad Sch Biomed &

    Hlth Sci Dept Adv Prosthodont Minami Ku 1-2-3 Kasumi Hiroshima 7348553 Japan;

    Hiroshima Univ Grad Sch Biomed &

    Hlth Sci Dept Adv Prosthodont Minami Ku 1-2-3 Kasumi Hiroshima 7348553 Japan;

    Hiroshima Univ Grad Sch Biomed &

    Hlth Sci Dept Adv Prosthodont Minami Ku 1-2-3 Kasumi Hiroshima 7348553 Japan;

    Hiroshima Univ Grad Sch Biomed &

    Hlth Sci Dept Adv Prosthodont Minami Ku 1-2-3 Kasumi Hiroshima 7348553 Japan;

    Hiroshima Univ Grad Sch Biomed &

    Hlth Sci Dept Adv Prosthodont Minami Ku 1-2-3 Kasumi Hiroshima 7348553 Japan;

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  • 正文语种 eng
  • 中图分类 化学;
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