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Acetylated Nanocellulose for Single-Component Bioinks and Cell Proliferation on 3D-Printed Scaffolds

机译:用于单组分生殖器和三维印刷支架上的单组分生物链和细胞增殖的乙酰化纳米纤维素

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摘要

Nanocellulose has been demonstrated as a suitable material for cell culturing, given its similarity to extracellular matrices. Taking advantage of the shear thinning behavior, nanocellulose suits three-dimensional (3D) printing into scaffolds that support cell attachment and proliferation. Here, we propose aqueous suspensions of acetylated nanocellulose of a low degree of substitution for direct ink writing (DM). This benefits from the heterogeneous acetylation of precursor cellulosic fibers, which eases their deconstruction and confers the characteristics required for extrusion in DIW. Accordingly, the morphology of related 3D printed architectures and their performance during drying and rewetting as well as interactions with living cells are compared with those produced from typical unmodified and TEMPO-oxidized nanocelluloses. We find that a significantly lower concentration of acetylated nanofibrils is needed to obtain bioinks of similar performance, affording more porous structures. Together with their high surface charge and axial aspect, acetylated nanocellulose produces dimensionally stable monolithic scaffolds that support drying and rewetting, required for packaging and sterilization. Considering their potential uses in cardiac devices, we discuss the interactions of the scaffolds with cardiac myoblast cells. Attachment, proliferation, and viability for 21 days are demonstrated. Overall, the performance of acetylated nanocellulose bioinks opens the possibility for reliable and scaleup fabrication of scaffolds appropriate for studies on cellular processes and for tissue engineering.
机译:鉴于其与细胞外基质的相似性,已证明纳米纤维素作为细胞培养的合适材料。利用剪切稀疏行为,纳米纤维素适合三维(3D)印刷成支撑细胞附着和增殖的支架。在此,我们将乙酰化纳米纤维素的水性悬浮液提出,用于直接墨水写入(DM)的低取代度的低取代。这种有益于前体纤维素纤维的异质乙酰化,这使其解构缓解并赋予DIW挤出所需的特性。因此,将相关3D印刷架构的形态及其在干燥和复合期间的性能以及与由典型的未经改性和速度氧化纳米纤维产生的那些进行比较。我们发现,需要显着降低乙酰化纳米纤维浓度,以获得类似的性能的生物链,得到更多多孔结构。乙酰化纳米纤维素的高表面电荷和轴向方面以及亚乙酰化纳米纤维素的尺寸稳定的整体支架,其支持干燥和重新润湿,需要包装和灭菌。考虑到心脏装置的潜在用途,我们讨论了支架与心肌细胞的相互作用。证明了21天的附着,增殖和活力。总的来说,乙酰化纳米纤维素生物链接的性能为适合于对细胞过程和组织工程的研究的可靠和扩大的结构制造的可能性。

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  • 来源
    《Biomacromolecules》 |2019年第7期|共9页
  • 作者单位

    Aalto Univ Sch Chem Engn Dept Bioprod &

    Biosyst POB 16300 FI-00076 Espoo Finland;

    Aalto Univ Sch Chem Engn Dept Bioprod &

    Biosyst POB 16300 FI-00076 Espoo Finland;

    Univ Helsinki Fac Pharm Drug Res Program Div Pharmaceut Chem &

    Technol FI-00014 Helsinki Finland;

    Aalto Univ Sch Chem Engn Dept Bioprod &

    Biosyst POB 16300 FI-00076 Espoo Finland;

    Aalto Univ Sch Chem Engn Dept Bioprod &

    Biosyst POB 16300 FI-00076 Espoo Finland;

    Univ Helsinki Fac Pharm Drug Res Program Div Pharmaceut Chem &

    Technol FI-00014 Helsinki Finland;

    Aalto Univ Sch Chem Engn Dept Bioprod &

    Biosyst POB 16300 FI-00076 Espoo 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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