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Impact of Biomimicry in the Design of Osteoinductive Bone Substitutes: Nanoscale Matters

机译:生物化学法在骨诱导骨替代品设计中的影响:纳米级事宜

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摘要

Bone apatite consists of carbonated calcium-deficient hydroxyapatite (CDHA) nanocrystals. Biomimetic routes allow fabricating synthetic bone grafts that mimic biological apatite. In this work, we explored the role of two distinctive features of biomimetic apatites, namely, nanocrystal morphology (plate vs needle-like crystals) and carbonate content, on the bone regeneration potential of CDHA scaffolds in an in vivo canine model. Both ectopic bone formation and scaffold degradation were drastically affected by the nanocrystal morphology after intramuscular implantation. Fine-CDHA foams with needle-like nanocrystals, comparable in size to bone mineral, showed a markedly higher osteoinductive potential and a superior degradation than chemically identical coarse-CDHA foams with larger plate-shaped crystals. These findings correlated well with the superior bone-healing capacity showed by the fine-CDHA scaffolds when implanted intraosseously. Moreover, carbonate doping of CDHA, which resulted in small plate-shaped nanocrystals, accelerated both the intrinsic osteoinduction and the bone healing capacity, and significantly increased the cell-mediated resorption. These results suggest that tuning the chemical composition and the nanostructural features may allow the material to enter the physiological bone remodeling cycle, promoting a tight synchronization between scaffold degradation and bone formation.
机译:骨吸道由碳酸钙缺乏羟基磷灰石(CDHA)纳米晶体组成。仿生途径允许制造模仿生物磷灰石的合成骨移植物。在这项工作中,我们探讨了两种独特特征的仿生磷灰石的作用,即纳米晶体形态(板vs针状晶体)和碳酸盐含量,在体内犬模型中CDHA支架的骨再生电位。异位骨形成和支架降解均受肌内植入后纳米晶体形态的急剧影响。具有针状纳米晶体的细胞细胞泡沫,尺寸与骨矿物质相当,显示出比具有较大板状晶体的化学相同的粗CDHA泡沫的显着较高的骨诱导电位和优异的降解。这些发现与骨内植入术时的优越的骨愈合能力良好。此外,导致小板状纳米晶体的CDHA的碳酸酯掺杂,加速了内在骨诱导和骨愈合能力,并显着增加了细胞介导的吸收。这些结果表明,调节化学成分和纳米结构特征可以使材料进入生理骨改造循环,促进支架降解和骨形成之间的紧密同步。

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  • 来源
    《ACS applied materials & interfaces》 |2019年第9期|共13页
  • 作者单位

    Univ Politecn Cataluna Dept Mat Sci &

    Met Engn Biomat Biomech &

    Tissue Engn Grp Ave Eduard Maristany 10-14 Barcelona 08019 Spain;

    Univ Politecn Cataluna Dept Mat Sci &

    Met Engn Biomat Biomech &

    Tissue Engn Grp Ave Eduard Maristany 10-14 Barcelona 08019 Spain;

    Univ Politecn Cataluna Dept Mat Sci &

    Met Engn Biomat Biomech &

    Tissue Engn Grp Ave Eduard Maristany 10-14 Barcelona 08019 Spain;

    Univ Politecn Cataluna Dept Mat Sci &

    Met Engn Biomat Biomech &

    Tissue Engn Grp Ave Eduard Maristany 10-14 Barcelona 08019 Spain;

    Univ Politecn Cataluna Dept Mat Sci &

    Met Engn Biomat Biomech &

    Tissue Engn Grp Ave Eduard Maristany 10-14 Barcelona 08019 Spain;

    Univ Politecn Cataluna Dept Mat Sci &

    Met Engn Biomat Biomech &

    Tissue Engn Grp Ave Eduard Maristany 10-14 Barcelona 08019 Spain;

    Uppsala Univ Dept Engn Sci Div Appl Mat Sci Mat Med Grp S-75121 Uppsala Sweden;

    Uppsala Univ Dept Engn Sci Div Appl Mat Sci Mat Med Grp S-75121 Uppsala Sweden;

    Univ Barcelona Dept Pathol &

    Expt Therapeut Human Anat &

    Embryol Unit Barcelona 08907 Spain;

    Univ Autonoma Barcelona Sch Vet Small Anim Surg Dept Bone Healing Grp E-08193 Barcelona Spain;

    Univ Politecn Cataluna Dept Mat Sci &

    Met Engn Biomat Biomech &

    Tissue Engn Grp Ave Eduard Maristany 10-14 Barcelona 08019 Spain;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;
  • 关键词

    biomimetic; calcium phosphate; carbonated apatite; nanostructure; foaming; osteoinduction; osteogenesis;

    机译:仿生;磷酸钙;碳酸化磷灰石;纳米结构;发泡;骨液;骨肉;

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