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Topotactic Fibrillogenesis of Freeze-Cast Microridged Collagen Scaffolds for 3D Cell Culture

机译:用于3D细胞培养的冷冻铸型微型胶原屑支架的拓扑纤维生成

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摘要

Type I collagen is the main component of the extracellular matrix (ECM). In vitro, under a narrow window of physicochemical conditions, type I collagen self-assembles to form complex supramolecular architectures reminiscent of those found in native ECM. Presently, a major challenge in collagen-based biomaterials is to couple the delicate collagen fibrillogenesis events with a controlled shaping process in non-denaturating conditions. In this work, an ice-templating approach promoting the structuration of collagen into macroporous monoliths is used. Instead of common solvent removal procedures, a new topotactic conversion approach yielding self-assembled ordered fibrous materials is implemented. These collagen-only, non-cross-linked scaffolds exhibit uncommon mechanical properties in the wet state, with a Young's modulus of 33 +/- 12 kPa, an ultimate tensile stress of 33 +/- 6 kPa, and a strain at failure of 105 +/- 28%. With the help of the ice-patterned microridge features, normal human dermal fibroblasts and C2C12 murine myoblasts successfully migrate and form highly aligned populations within the resulting three-dimensional (3D) collagen scaffolds. These results open a new pathway to the development of new tissue engineering scaffolds ordered across various organization levels from the molecule to the macropore and are of particular interest for biomedical applications where large-scale 3D cell alignment is needed such as for muscular or nerve reconstruction.
机译:I型胶原是细胞外基质(ECM)的主要成分。体外,在狭窄的物理化学条件的窗口下,I型胶原蛋白自组装以形成复杂的超分子架构,让人想起在本地ECM中发现的那些。目前,基于胶原基的生物材料的主要挑战是将微粒胶原纤维生成事件耦合,在非变性条件下具有受控的成型过程。在这项工作中,使用一种促进胶原蛋白施工成大孔整料的冰模板方法。采用了一种新的拓扑转换方法,而不是常见的溶剂去除程序,得到了产生自组装有序的纤维材料。仅这些胶原蛋白的非交联支架在潮湿状态下表现出罕见的机械性能,杨氏模量为33 +/- 12 kPa,最终拉伸应力为33 +/- 6 kPa,并且在发生故障时的菌株105 +/- 28%。借助于冰图案的微藤特征,正常人体皮肤成纤维细胞和C2C12鼠肌细胞成功地迁移并形成高度对准的群体内得到的三维(3D)胶原屑支架。这些结果开放了新的组织工程支架,从分子到宏观的各种组织水平下令的新途径,对于需要大规模3D细胞对准的生物医学应用,诸如用于肌肉或神经重建的生物医学应用特别感兴趣。

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  • 来源
    《ACS applied materials & interfaces》 |2019年第16期|共12页
  • 作者单位

    Sorbonne Univ CNRS Lab Chim Mat Condensee Paris Pierre &

    Marie Curie Campus 4 Pl Jussieu F-75252 Paris 05 France;

    Sorbonne Univ CNRS Lab Chim Mat Condensee Paris Pierre &

    Marie Curie Campus 4 Pl Jussieu F-75252 Paris 05 France;

    Sorbonne Univ CNRS Lab Chim Mat Condensee Paris Pierre &

    Marie Curie Campus 4 Pl Jussieu F-75252 Paris 05 France;

    Sorbonne Univ CNRS Lab Chim Mat Condensee Paris Pierre &

    Marie Curie Campus 4 Pl Jussieu F-75252 Paris 05 France;

    Sorbonne Univ CNRS Lab Chim Mat Condensee Paris Pierre &

    Marie Curie Campus 4 Pl Jussieu F-75252 Paris 05 France;

    Sorbonne Univ CNRS Lab Chim Mat Condensee Paris Pierre &

    Marie Curie Campus 4 Pl Jussieu F-75252 Paris 05 France;

    Sorbonne Univ CNRS Lab Chim Mat Condensee Paris Pierre &

    Marie Curie Campus 4 Pl Jussieu F-75252 Paris 05 France;

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

    biomaterials; collagen fibrillogenesis; ice templating; 3D cell culture; macroporous scaffold;

    机译:生物材料;胶原型纤维生成;冰模板;3D细胞培养;大孔脚手架;

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