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A microfluidic strategy to fabricate ultra-thin polyelectrolyte hollow microfibers as 3D cellular carriers

机译:一种制造超薄聚电解质中空超细纤维作为3D细胞载体的微流体策略

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摘要

Microfluidics-based microfibers have been widely used as bottom-up scaffolds for tissue engineering applications. Different forms of microfibers with certain thickness of shell have been developed during the past decade. Ultra-thin microfiber, as a special and promising carrier of cells, was less explored. In this work, by using the interfacial ionic interaction between sodium alginate (NaA) and chitosan (CS), a novel ultra-thin polyelectrolyte hollow microfiber with the diameter of similar to 200 mu m and the shell thickness of 1.3 +/- 0.3 mu m was fabricated via a microfluidic device for liver tissue engineering. The fluorescence of FITC labeled CS confirmed the inner CS layer of the fabricated microfiber and the SEM results illustrated its ultra-thin characteristic. Although there are only two layers in the ultra-thin polyelectrolyte hollow microfiber, the following cells encapsulation experiments indicated that it could bear cells loading and the hollow space of the microfibers could encapsulate sufficient number of cells for tissue engineering applications. The presence of inner CS layer in the microfiber promoted cell adhesion and ultra-thin shell characteristic facilitated the exchange of nutrient substance and O-2 and thus promoted cell proliferation. HepG2 cells encapsulated in the microfibers maintained favorable viability, proliferation ability and hepatic specific functions during 10 days' culture. These results suggest that the established polyelectrolyte microfibers hold great potential applications in the field of liver tissue engineering. We believe this work will lead to the development of innovative methodologies and materials for both cell culture and biomedical application.
机译:基于微流体的微纤维已被广泛用作组织工程应用的自下而上的支架。在过去的十年中,已经开发出具有一定厚度的壳的不同形式的微纤维。作为一种特殊而有希望的细胞载体,超薄超细纤维的研究较少。在这项工作中,利用藻酸钠(NaA)和壳聚糖(CS)之间的界面离子相互作用,制得了一种新型的超薄聚电解质中空超细纤维,其直径接近200微米,壳厚度为1.3 +/- 0.3微米。通过用于肝组织工程的微流体装置制造m。 FITC标记的CS的荧光证实了所制造的微纤维的内CS层,并且SEM结果证明了其超薄特性。尽管超薄聚电解质中空超细纤维只有两层,但以下细胞包裹实验表明,它可以承受细胞负荷,并且超细纤维的中空空间可以包裹足够数量的细胞用于组织工程应用。超细纤维内部CS层的存在促进了细胞粘附和超薄壳特性,促进了营养物质和O-2的交换,从而促进了细胞增殖。封装在微纤维中的HepG2细胞在10天的培养过程中保持了良好的生存力,增殖能力和肝特异性功能。这些结果表明,已建立的聚电解质微纤维在肝组织工程领域具有巨大的潜在应用。我们相信这项工作将导致细胞培养和生物医学应用的创新方法和材料的发展。

著录项

  • 来源
    《Materials science & engineering》 |2019年第11期|109705.1-109705.10|共10页
  • 作者单位

    Chinese Acad Sci Dalian Inst Chem Phys Div Biotechnol CAS Key Lab Separat Sci Analyt Chem 457 Zhongshan Rd Dalian 116023 Peoples R China;

    Chinese Acad Sci Dalian Inst Chem Phys Div Biotechnol CAS Key Lab Separat Sci Analyt Chem 457 Zhongshan Rd Dalian 116023 Peoples R China|Univ Chinese Acad Sci Beijing Peoples R China;

    Chinese Acad Sci Dalian Inst Chem Phys Div Biotechnol CAS Key Lab Separat Sci Analyt Chem 457 Zhongshan Rd Dalian 116023 Peoples R China|Chinese Acad Sci Inst Stem Cell & Regenerat Beijing Peoples R China|Chinese Acad Sci CAS Ctr Excellence Brain Sci & Intelligence Techn Shanghai Peoples R China|Univ Chinese Acad Sci Beijing Peoples R China;

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

    Microfluidics; Alginate; Chitosan; Ultra-thin polyelectrolyte microfibers; Cell culture;

    机译:微流体;海藻酸盐;壳聚糖超薄聚电解质超细纤维;细胞培养;

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