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Blended Polyurethane and Tropoelastin as a Novel Class of Biologically Interactive Elastomer

机译:聚氨酯和回弹性蛋白共混物作为一类新型的生物相互作用弹性体

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摘要

Polyurethanes are versatile elastomers but suffer from biological limitations such as poor control over cell attachment and the associated disadvantages of increased fibrosis. We address this problem by presenting a novel strategy that retains elasticity while modulating biological performance. We describe a new biomaterial that comprises a blend of synthetic and natural elastomers: the biostable polyurethane Elast-Eon and the recombinant human tropoelastin protein. We demonstrate that the hybrid constructs yield a class of coblended elastomers with unique physical properties. Hybrid constructs displayed higher elasticity and linear stress–strain responses over more than threefold strain. The hybrid materials showed increased overall porosity and swelling in comparison to polyurethane alone, facilitating enhanced cellular interactions. In vitro, human dermal fibroblasts showed enhanced proliferation, while in vivo, following subcutaneous implantation in mice, hybrid scaffolds displayed a reduced fibrotic response and tunable degradation rate. To our knowledge, this is the first example of a blend of synthetic and natural elastomers and is a promising approach for generating tailored bioactive scaffolds for tissue repair.
机译:聚氨酯是通用的弹性体,但具有生物学上的局限性,例如对细胞附着的控制不力以及纤维化增加的相关缺点。我们通过提出一种在调节生物学性能的同时保留弹性的新颖策略来解决这个问题。我们描述了一种新的生物材料,它包括合成和天然弹性体的混合物:生物稳定的聚氨酯弹性体和重组人原弹性蛋白。我们证明了混合结构产生一类具有独特物理性质的共混弹性体。混合结构在三倍以上的应变下表现出更高的弹性和线性应力应变响应。与单独的聚氨酯相比,杂化材料显示出更高的总体孔隙率和溶胀度,从而促进了细胞之间的相互作用。在体外,人真皮成纤维细胞显示出增强的增殖,而在体内,在小鼠皮下植入后,杂种支架显示出降低的纤维化反应和可调的降解速率。据我们所知,这是合成弹性体和天然弹性体的第一个例子,并且是产生定制的用于组织修复的生物活性支架的有前途的方法。

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