首页> 外文期刊>Journal of Polymer Research >Calcium phosphate and calcium carbonate mineralization of bioinspired hydrogels based on beta-chitin isolated from biomineral of the common cuttlefish (Sepia officinalis, L.)
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Calcium phosphate and calcium carbonate mineralization of bioinspired hydrogels based on beta-chitin isolated from biomineral of the common cuttlefish (Sepia officinalis, L.)

机译:基于普通墨鱼(Sepia Officinalis,L.)分离的β-丁蛋白的生物灌注水凝胶磷酸钙和碳酸钙矿化。(棕褐色Officinalis,L.)

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摘要

Chitin, a bioactive, antibacterial and biodegradable polymer is commonly utilized by diverse marine organisms as the main scaffold material during biomineralization. Due to its properties, chitin is also of interest as a component of organo-inorganic composites for diverse biomedical applications. In this study, chitinous fibers isolated from the cuttle-bone of the common cuttlefish (Sepia officinalis, L.) are characterized and evaluated for use as an integral part of mineralized hydrogels for biomedical applications. Since marine organisms use calcium carbonates (CaCO3), while vertebrates use calcium phosphates (CaP) as the main inorganic hard tissue components, and both minerals are used in hard tissue engineering, they were compared to determine which composite is potentially a better biomaterial. Hydrogel mineralization was conducted by subsequent dipping into cationic and anionic reactant solutions, resulting in the formation of a CaCO3 or CaP coating that penetrated into the hydrogel. Obtained composites were characterized by X-ray diffraction (XRD), Fourier transform infrared spectroscopy (FTIR), atomic force microscopy (AFM), scanning electron microscopy (SEM), rheology, swelling tests and simple compression. The results indicate that beta-chitin can be used for the preparation of moldable hydrogels that are easily mineralized. Mineralized hydrogels have higher elasticity than non-mineralized ones while swelling is better if the extent of mineralization is lower. Further optimization of the hydrogels composition could improve their stress response and Young's modulus, where the current hydrogel with a higher extent of CaP mineralization excels in comparison to all other investigated composites.
机译:几丁质,生物活性,抗菌和可生物降解的聚合物通常通过各种海洋生物作为生物矿化过程中的主要支架材料。由于其性质,甲壳素也是有机 - 无机复合材料的组分,用于各种生物医学应用。在本研究中,从普通墨鱼(Sepia Officinalis,L.)的Cuttle-Bone中分离的胆小纤维进行了表征和评估用作生物医学应用的矿化水凝胶的组成部分。由于海洋生物使用碳酸钙(CaCO3),而脊椎动物使用磷酸钙(盖子)作为主要的无机硬组织成分,并且两种矿物在硬组织工程中使用,它们进行了比较,以确定哪种复合材料可能是更好的生物材料。通过随后浸入阳离子和阴离子反应物溶液中进行水凝胶矿化,导致形成渗透到水凝胶中的CaCO 3或帽涂层。获得的复合材料以X射线衍射(XRD),傅里叶变换红外光谱(FTIR),原子力显微镜(AFM),扫描电子显微镜(SEM),流变,溶胀试验和简单的压缩。结果表明,β-甲壳素可用于制备易于矿化的可模塑水凝胶。矿化水凝胶具有比非矿化较高的弹性,而溶胀会更好,如果矿化程度较低。水凝胶组合物的进一步优化可以改善其应力反应和杨氏模量,其中当前水凝胶与所有其他研究复合材料相比,具有较高程度的帽矿化优异的。

著录项

  • 来源
    《Journal of Polymer Research》 |2018年第10期|共12页
  • 作者单位

    Rudjer Boskovic Inst Div Phys Chem Lab Biocolloids &

    Surface Chem Zagreb 10000 Croatia;

    Rudjer Boskovic Inst Div Phys Chem Lab Biocolloids &

    Surface Chem Zagreb 10000 Croatia;

    Fac Min Geol &

    Petr Engn Pierrotijeva 6 Zagreb 10000 Croatia;

    Rudjer Boskovic Inst Ctr Marine Res Lab Marine Nanotechnol &

    Biotechnol Giordano Paliaga 5 Rovinj 52210 Croatia;

    Tomas Bata Univ Zlin Univ Inst Ctr Polymer Syst Tr Tomase Bati 5678 Zlin 76001 Czech Republic;

    Tomas Bata Univ Zlin Univ Inst Ctr Polymer Syst Tr Tomase Bati 5678 Zlin 76001 Czech Republic;

    Rudjer Boskovic Inst Div Phys Chem Lab Biocolloids &

    Surface Chem Zagreb 10000 Croatia;

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

    Cuttlebone; Chitin; AFM; Hydrogels; Mineralization; Mechanical properties;

    机译:cuttlebone;丁蛋白;afm;水凝胶;矿化;机械性能;

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