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Bone cells in cultures on nanocarbon-based materials for potential bone tissue engineering: A review

机译:基于纳米碳材料的培养物中的骨细胞可用于潜在的骨组织工程:综述

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摘要

The following materials based on four allotrope types of nanocarbons were investigated: (1) fullerene C_(60) and hybrid C_(60)/Ti films, (2) composites of synthetic polymers and carbon nanotubules (i.e., carbon nanohorns and carbon nanotubes), (3) graphene-based materials (films and three-dimensional scaffolds), and (4) nanocrystalline diamond-based materials (films and nanofibrous scaffolds loaded with nanodiamond particles). In general, all these substrates provided a good support for colonization with human osteoblast-like cells of the lines MG-63, Saos-2 and U-2 OS, primary osteoblasts, and also human mesenchymal stem cells (hMSC). In the case of fullerenes C_(60), this was true for aged, i.e., 1-year-old, films. Fresh films, i.e., 1-week-old, had a decreased number of initially adhering cells, with less spreading, growth, metabolic activity and viability, though no DNA damage was detected. In the case of C_(60)/Ti composite films, both fresh and aged films supported cell colonization well. The improved cell performance was attributed to structural changes in fullerene molecules, such as fragmentation, oxidation and polymerization, which occur during aging or co-deposition of C_(60) and Ti. The addition of single-wall carbon nanohorns or multi-wall carbon nanotubes to a terpolymer of polytetrafluoroethylene, polyvinyldifluoride and polypropylene (PTFE/PVDF/PP) markedly improved the adhesion and growth of bone cells, while no significant changes in cell behavior were found on polysulfone after it had been enriched with the carbon nanotubules mentioned here. Graphene-based films and scaffolds stimulated the adhesion and osteogenic differentiation of bone-forming cells even in the absence of cell adhesion-mediating molecules and differentiation factors in the cell culture medium. Nanocrystalline diamond films proved to be excellent substrates for cell adhesion, growth and osteogenic differentiation, and this cell behavior was further improved by boron doping (concentration of 133-6700 ppm) or by oxygen termination of these films. The addition of diamond nanoparticles to nanofibrous poly(lactide-co-glycolide) (PLGA) scaffolds increased the proliferation of hMSC and supported the adhesion and growth of MG-63 cells in an extent similar to cell culture polystyrene. However, on nanofibrous poly(L-lactide) scaffolds with diamond nanoparticles, the growth of MG-63 cells decreased with increasing nanoparticle concentration.
机译:研究了基于四种同素异形体类型的纳米碳的以下材料:(1)富勒烯C_(60)和杂化C_(60)/ Ti膜,(2)合成聚合物和碳纳米管(即碳纳米角和碳纳米管)的复合材料,(3)石墨烯基材料(薄膜和三维支架)和(4)纳米晶金刚石基材料(薄膜和纳米纤维支架上装有纳米金刚石颗粒)。通常,所有这些底物都为MG-63,Saos-2和U-2 OS系的人成骨细胞样细胞,原代成骨细胞以及人间充质干细胞(hMSC)的定殖提供了良好的支持。就富勒烯C_(60)而言,这适用于陈旧的(即1岁的)胶卷。尽管未检测到DNA损伤,但刚开始培养的新膜(即1周龄)的最初粘附细胞数量减少,传播,生长,代谢活性和生存能力均降低。在C_(60)/ Ti复合膜的情况下,新鲜膜和老化膜均能很好地支持细胞定居。改进的电池性能归因于富勒烯分子的结构变化,例如断裂,氧化和聚合,这些变化发生在C_(60)和Ti的老化或共沉积过程中。在聚四氟乙烯,聚二氟乙烯和聚丙烯的三元共聚物(PTFE / PVDF / PP)中添加单壁碳纳米角或多壁碳纳米管可显着改善骨细胞的黏附和生长,而在硅藻土上未发现明显的细胞行为变化。聚砜中富含此处提到的碳纳米管后。即使在细胞培养基中不存在介导细胞粘附的分子和分化因子的情况下,基于石墨烯的薄膜和支架也能刺激成骨细胞的粘附和成骨分化。纳米晶金刚石薄膜被证明是细胞粘附,生长和成骨分化的极好基质,并且通过掺杂硼(浓度为133-6700 ppm)或通过这些薄膜的氧封端进一步改善了这种细胞行为。将金刚石纳米颗粒添加到纳米纤维聚(丙交酯-乙交酯)(PLGA)支架中可增加hMSC的增殖并以与细胞培养聚苯乙烯相似的程度支持MG-63细胞的粘附和生长。然而,在具有金刚石纳米粒子的纳米纤维聚(L-丙交酯)支架上,MG-63细胞的生长随着纳米粒子浓度的增加而降低。

著录项

  • 来源
    《Physica status solidi》 |2014年第12期|2688-2702|共15页
  • 作者单位

    Institute of Physiology, Academy of Sciences of the Czech Republic, Videnska 1083, 14220 Prague 4-Krc, Czech Republic;

    Institute of Physiology, Academy of Sciences of the Czech Republic, Videnska 1083, 14220 Prague 4-Krc, Czech Republic;

    Institute of Physiology, Academy of Sciences of the Czech Republic, Videnska 1083, 14220 Prague 4-Krc, Czech Republic;

    Institute of Physiology, Academy of Sciences of the Czech Republic, Videnska 1083, 14220 Prague 4-Krc, Czech Republic;

    Nuclear Physics Institute, Academy of Sciences of the Czech Republic, 250 68 Rez near Prague, Czech Republic;

    Nuclear Physics Institute, Academy of Sciences of the Czech Republic, 250 68 Rez near Prague, Czech Republic;

    Institute of Physics, Academy of Sciences of the Czech Republic, Cukrovarnicka 10, 162 00 Prague 6, Czech Republic;

    Institute of Physics, Academy of Sciences of the Czech Republic, Cukrovarnicka 10, 162 00 Prague 6, Czech Republic;

    Elmarco s.r.o., Svarovska 621, 46010 Liberec 10, Czech Republic;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    biocompatibility; bone implants; carbon; nanoparticles; scaffolds; thin films;

    机译:生物相容性骨植入物;碳;纳米粒子脚手架薄膜;

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