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通过微流控技术制备的复合细胞外基质-藻酸盐微纤维作为具有生物矿化潜力的支架。

Composite ECM-alginate microfibers produced by microfluidics as scaffolds with biomineralization potential.

作者信息

Angelozzi Marco, Miotto Martina, Penolazzi Letizia, Mazzitelli Stefania, Keane Timothy, Badylak Stephen F, Piva Roberta, Nastruzzi Claudio

机构信息

Department of Biomedical and Specialty Surgical Sciences, University of Ferrara, Ferrara, Italy.

Department of Life Sciences and Biotechnology, University of Ferrara, Ferrara, Italy.

出版信息

Mater Sci Eng C Mater Biol Appl. 2015 Nov 1;56:141-53. doi: 10.1016/j.msec.2015.06.004. Epub 2015 Jun 9.

Abstract

A novel approach to produce artificial bone composites (microfibers) with distinctive features mimicking natural tissue was investigated. Currently proposed inorganic materials (e.g. apatite matrixes) lack self-assembly and thereby limit interactions between cells and the material. The present work investigates the feasibility of creating "bio-inspired materials" specifically designed to overcome certain limitations inherent to current biomaterials. We examined the dimensions, morphology, and constitutive features of a composite hydrogel which combined an alginate based microfiber with a gelatin solution or a particulate form of urinary bladder matrix (UBM). The effectiveness of the composite microfibers to induce and modulate osteoblastic differentiation in three-dimensional (3D) scaffolds without altering the viability and morphological characteristics of the cells was investigated. The present study describes a novel alginate microfiber production method with the use of microfluidics. The microfluidic procedure allowed for precise tuning of microfibers which resulted in enhanced viability and function of embedded cells.

摘要

研究了一种制备具有模仿天然组织独特特征的人工骨复合材料(微纤维)的新方法。目前提出的无机材料(如磷灰石基质)缺乏自组装能力,从而限制了细胞与材料之间的相互作用。本研究探讨了制造“仿生材料”的可行性,该材料专门设计用于克服当前生物材料固有的某些局限性。我们研究了一种复合水凝胶的尺寸、形态和组成特征,该水凝胶将基于藻酸盐的微纤维与明胶溶液或颗粒形式的膀胱基质(UBM)相结合。研究了复合微纤维在不改变细胞活力和形态特征的情况下,在三维(3D)支架中诱导和调节成骨细胞分化的有效性。本研究描述了一种利用微流控技术生产新型藻酸盐微纤维的方法。微流控程序允许对微纤维进行精确调节,从而提高包埋细胞的活力和功能。

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