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首页> 外文期刊>New Journal of Chemistry >Mineral-substituted hydroxyapatite reinforced poly(raffinose-citric acid)-polyethylene glycol nanocomposite enhances osteogenic differentiation and induces ectopic bone formation
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Mineral-substituted hydroxyapatite reinforced poly(raffinose-citric acid)-polyethylene glycol nanocomposite enhances osteogenic differentiation and induces ectopic bone formation

机译:矿物取代的羟基磷灰石增强聚(蜡淀粉 - 柠檬酸) - 聚乙二醇纳米复合材料增强了成骨分化并诱导异位骨形成

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摘要

In this study, mineral-substituted hydroxyapatite (M-HA (5, 10, and 15 wt%)) reinforced poly(raffinose-citric acid)-polyethylene glycol-poly(raffinose-citric acid) (PRC-PEG-PRC) was synthesized employing a microwave irradiation technique. The ability of the fabricated nanocomposite for bone development was studied in vitro using human osteosarcoma HOS MG63 cells and in vivo after subcutaneous implantation into Wistar rats. This porous M-HA/PRC-PEG-PRC nanocomposite encouraged the adhesion, growth, and multiplication of HOS cells, as displayed by their uniform morphology and as determined by cell adhesion and the live/dead cell assay. Upon osteogenic differentiation, superior ALP activity and bone-related gene expression were observed for the HOS cells on the M-HA/PRC-PEG-PRC nanocomposite compared with the cells on pure PRC-PEG-PRC scaffolds. In in vivo implantation experiments, ossification and development of trabeculae were detected on the M-HA (15 wt%)/PRC-PEG-PRC nanocomposite in contrast to pure PRC-PEG-PRC. In addition, the porous M-HA (15 wt%)/PRC-PEG-PRC nanocomposite demonstrated the capacity for ectopic bone arrangement. Moreover, decreased numbers of bacterial colonies of Staphylococcus aureus and Escherichia coli were observed in the presence of the M-HA/PRC-PEG-PRC scaffolds, indicating the reduced risk for implant failure after implantation. The good cell affinity of the M-HA/PRC-PEG-PRC porous materials indicated that they might be used as scaffolds for bone tissue engineering.
机译:在该研究中,矿物取代的羟基磷灰石(M-HA(5,10和15wt%))增强聚(戊糖糖 - 柠檬酸) - 聚乙二醇 - 聚(紫菜糖 - 柠檬酸)(PRC-PEG-PRC)是采用微波辐射技术合成。对骨骼发育所制造的纳米复合材料的能力,使用人骨肉瘤HOS MG63细胞的体外研究和体内皮下植入后到Wistar大鼠。这种多孔M-HA / PRC-PEG-PRC纳米复合材料促进了肝细胞的粘附,生长和繁殖,如其均匀形态所显示的,并且通过细胞粘附和活/死池测定确定。与纯PRC-PEG-PRC支架上的细胞相比,对M-HA / PRC-PEG-PRC纳米复合材料上的HOS细胞观察到骨质发生分化,优异的ALP活性和骨相关基因表达。在植入体内实验,骨化和骨小梁的发展对M-HA(15重量%)在对比纯PRC-PEG-PRC / PRC-PEG-PRC纳米复合材料进行检测。此外,多孔M-HA(15wt%)/ prC-PEG-PRC纳米复合材料证明了异位骨布置的能力。此外,在M-HA / PRC-PEG-PRC支架存在下观察到葡萄球菌和大肠杆菌的细菌菌落数量减少,表明植入后植入物失效的风险降低。 M-HA / PRC-PEG-PRC多孔材料的良好细胞亲和力表明它们可用作骨组织工程的支架。

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  • 来源
    《New Journal of Chemistry》 |2017年第8期|共12页
  • 作者单位

    Madurai Kamaraj Univ Sch Chem Dept Nat Prod Chem Biomat Med Chem Lab Madurai 625021 Tamil Nadu India;

    Madurai Kamaraj Univ Sch Chem Dept Nat Prod Chem Biomat Med Chem Lab Madurai 625021 Tamil Nadu India;

    King Saud Univ Coll Sci Dept Bot &

    Microbiol Riyadh Saudi Arabia;

    King Saud Univ Coll Sci Dept Bot &

    Microbiol Riyadh Saudi Arabia;

    Univ Putra Malaysia Fac Med &

    Hlth Sci Dept Med Microbiol &

    Parasitol Serdang Malaysia;

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

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