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静电纺丝法制备三维纳米、微米及微/纳复合多孔聚乳酸支架及其 Z 堆叠/三维重建技术比较细胞渗透。

Fabrication of three-dimensional nano, micro and micro/nano scaffolds of porous poly(lactic acid) by electrospinning and comparison of cell infiltration by Z-stacking/three-dimensional projection technique.

机构信息

Amrita Vishwa Vidyapeetham University, Amrita Centre for Nanosciences and Molecular Medicine, Kochi, India.

出版信息

IET Nanobiotechnol. 2012 Mar;6(1):16-25. doi: 10.1049/iet-nbt.2011.0028.

Abstract

The use of electrospun extracellular matrix (ECM)-mimicking nanofibrous scaffolds for tissue engineering is limited by poor cellular infiltration. The authors hypothesised that cell penetration could be enhanced in scaffolds by using a hierarchical structure where nano fibres are combined with micron-scale fibres while preserving the overall scaffold architecture. To assess this, we fabricated electrospun porous poly(lactic acid) (PLA) scaffolds having nanoscale, microscale and combined micro/nano architecture and evaluated the structural characteristics and biological response in detail. Although the bioactivity was intermediate to that for nanofibre and microfibre scaffold, a unique result of this study was that the micro/nano combined fibrous scaffold showed improved cell infiltration and distribution than the nanofibrous scaffold. Although the cells were found to be lining the scaffold periphery in the case of nanofibrous scaffold, micro/nano scaffolds had cells dispersed throughout the scaffold. Further, as expected, the addition of nanoparticles of hydroxyapatite (nHAp) improved the bioactivity, although it did not play a significant role in cell penetration. Thus, this strategy of creating a three-dimensional (3D) micro/nano architecture that would increase the porosity of the fibrous scaffold and thereby improving the cell penetration, can be utilised for the generation of functional tissue engineered constructs in vitro.

摘要

静电纺丝细胞外基质(ECM)仿生纳米纤维支架在组织工程中的应用受到细胞渗透不良的限制。作者假设通过使用纳米纤维与微米纤维相结合的分层结构,可以在支架中增强细胞穿透,同时保留整体支架结构。为了评估这一点,我们制造了具有纳米级、微米级和组合微/纳米结构的静电纺丝多孔聚乳酸(PLA)支架,并详细评估了其结构特征和生物反应。尽管生物活性介于纳米纤维支架和微纤维支架之间,但这项研究的一个独特结果是,与纳米纤维支架相比,微/纳米组合纤维支架显示出更好的细胞渗透和分布。尽管在纳米纤维支架的情况下,细胞被发现排列在支架的外围,但微/纳米支架的细胞分布在整个支架中。此外,正如预期的那样,添加羟基磷灰石(nHAp)纳米颗粒提高了生物活性,尽管它在细胞渗透中没有发挥重要作用。因此,这种创建三维(3D)微/纳米结构的策略可以增加纤维支架的孔隙率,从而提高细胞渗透,可用于体外生成功能性组织工程构建体。

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