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首页> 外文期刊>Biomacromolecules >Three-Dimensional Printed Cell Culture Model Based on Spherical Colloidal Lignin Particles and Cellulose Nanofibril-Alginate Hydrogel
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Three-Dimensional Printed Cell Culture Model Based on Spherical Colloidal Lignin Particles and Cellulose Nanofibril-Alginate Hydrogel

机译:基于球形胶体木质素颗粒和纤维素纳米纤维 - 藻酸盐水凝胶的三维印刷细胞培养模型

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摘要

Three-dimensional (3D) printing has been an emerging technique to fabricate precise scaffolds for biomedical applications. Cellulose nanofibril (CNF) hydrogels have attracted considerable attention as a material for 3D printing because of their shear-thinning properties. Combining cellulose nanofibril hydrogels with alginate is an effective method to enable cross-linking of the printed scaffolds in the presence of Ca2+ ions. In this work, spherical colloidal lignin partides (CLPs, also known as spherical lignin nanopartides) were used to prepare CNF-alginate-CLP nanocomposite scaffolds. High-resolution images obtained by atomic force microscopy (AFM) showed that CLPs were homogeneously mixed with the CNF hydrogel. CLPs brought antioxidant properties to the CNF-alginate-CLP scaffolds in a concentration-dependent manner and increased the viscosity of the hydrogels at a low shear rate, which correspondingly provide better shape fidelity and printing resolution to the scaffolds. Interestingly, the CLPs did not affect the viscosity at high shear rates, showing that the shear thinning behavior typical for CNF hydrogels was retained, enabling easy printing. The CNF-alginate-CLP scaffolds demonstrated shape stability after printing, cross-linking, and storage in Dulbecco's phosphate buffer solution (DPBS +) containing Ca2+ and Mg2+ ions, up to 7 days. The 3D-printed scaffolds showed relative rehydration ratio values above 80% after freeze-drying, demonstrating a high water-retaining capability. Cell viability tests using hepatocellular carcinoma cell line HepG2 showed no negative effect of CLPs on cell proliferation. Fluorescence microscopy indicated that HepG2 cells grew not only on the surfaces but also inside the porous scaffolds. Overall, our results demonstrate that nanocomposite CNF-alginate-CLP scaffolds have high potential in soft-tissue engineering and regenerative-medicine applications.
机译:三维(3D)印刷是制造生物医学应用的精确支架的新型技术。由于其剪切稀疏性能,纤维素纳米纤维(CNF)水凝胶作为3D打印的材料引起了相当大的关注。将纤维素纳米纤维水凝胶与藻酸盐组合是一种有效的方法,以便在Ca2 +离子存在下进行印刷的支架的交联。在这项工作中,使用球形胶体木质素伴侣(CLPS,也称为球形木质素纳米氨酸)制备CNF-藻酸盐-CLP纳米复合支架。通过原子力显微镜(AFM)获得的高分辨率图像显示CLP与CNF水凝胶均匀混合。 CLP以浓度依赖性方式向CNF-藻酸盐-CLP支架带来抗氧化性能,并以低剪切速率增加水凝胶的粘度,这相应地为支架提供更好的形状保真度和印刷分辨率。有趣的是,CLP不影响高剪切速率的粘度,表明保留了CNF水凝胶典型的剪切变薄行为,使易于印刷。 CNF-藻酸CLP支架在含Ca 2 +和Mg 2 +离子的Dulbecco磷酸盐缓冲溶液(DPBS +)中的印刷,交联和储存后表现出形状稳定性,最多可达7天。 3D印刷支架在冷冻干燥后显示出高于80%以上的相对再水化率值,证明了高保险能力。使用肝细胞癌细胞系HepG2的细胞活力测试显示CLPS对细胞增殖的负面影响。荧光显微镜表明HepG2细胞不仅在表面上繁殖,而且在多孔支架内而异。总体而言,我们的结果表明,纳米复合材料CNF-藻酸盐CLP支架在软组织工程和再生药应用中具有很高的潜力。

著录项

  • 来源
    《Biomacromolecules》 |2020年第5期|共11页
  • 作者单位

    Aalto Univ Dept Bioprod &

    Biosyst Sch Chem Engn FI-00076 Aalto Finland;

    Aalto Univ Dept Bioprod &

    Biosyst Sch Chem Engn FI-00076 Aalto Finland;

    Aalto Univ Dept Bioprod &

    Biosyst Sch Chem Engn FI-00076 Aalto Finland;

    Aalto Univ Sch Sci Dept Appl Phys FIN-02150 Espoo Finland;

    Aalto Univ Dept Bioprod &

    Biosyst Sch Chem Engn FI-00076 Aalto Finland;

    Aalto Univ Dept Bioprod &

    Biosyst Sch Chem Engn FI-00076 Aalto Finland;

    Aalto Univ Dept Bioprod &

    Biosyst Sch Chem Engn FI-00076 Aalto Finland;

    Aalto Univ Dept Bioprod &

    Biosyst Sch Chem Engn FI-00076 Aalto Finland;

    Aalto Univ Dept Bioprod &

    Biosyst Sch Chem Engn FI-00076 Aalto Finland;

    Aalto Univ Dept Bioprod &

    Biosyst Sch Chem Engn FI-00076 Aalto Finland;

    Aalto Univ Dept Bioprod &

    Biosyst Sch Chem Engn FI-00076 Aalto Finland;

    Aalto Univ Dept Bioprod &

    Biosyst Sch Chem Engn FI-00076 Aalto Finland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子生物学;
  • 关键词

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