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PEGylated poly(ester amide) elastomer scaffolds for soft tissue engineering

机译:用于软组织工程的聚乙二醇化聚(酯酰胺)弹性体支架

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Biodegradable synthetic elastomers with tunable mechanical and physicochemical properties remain attractive materials for soft tissue engineering. We have recently synthesized novel poly(1,3-diamino-2-hydroxypropane-co-glycerol sebacate)-co-poly(ethylene glycol) (APS-co-PEG) biodegradable elastomers. This class of PEGylated elastomers has widely tunable mechanical and degradation properties compared wtih currently available biodegradable elastomers. To further investigate the biological application of this class of elastomers, we fabricated hybrid APS-co-PEG/polycaprolactone (PCL) porous scaffolds by electrospinning. The fiber morphology, chemical composition, mechanical properties, degradability, and cytocompatibility of hybrid APS-co-PEG/PCL electrospun scaffolds were characterized. These scaffolds exhibited a wide range of mechanical properties and similar cytocompatibility to PCL scaffolds. Importantly, PEGylation inhibited platelet adhesion on all APS-co-PEG/PCL electrospun scaffolds when compared with PCL and APS/PCL scaffolds, suggesting a potential role in mitigating thrombogenicity in vivo. Additionally, APS-25PEG/PCL scaffolds were found to be mechanically analogous to human heart valve leaflet and supported attachment of human aortic valve cells. These results reveal that hybrid APS-co-PEG/PCL scaffolds may serve as promising constructs for soft tissue engineering, especially heart valve tissue engineering. Copyright (C) 2017 John Wiley & Sons, Ltd.
机译:具有可调谐机械和物理化学性质的可生物降解的合成弹性体仍然有吸引力的软组织工程材料。我们最近合成了新型聚(1,3-二氨基-2-羟丙烷-CO-甘油Spacate)-CO-聚(乙二醇)(APS-Co-PEG)可生物降解的弹性体。这类聚乙二醇化弹性体具有广泛的可调谐机械和降解性能,与目前可获得的可生物降解的弹性体相比。为了进一步研究这类弹性体的生物学应用,我们通过静电纺丝制造杂化APS-Co-PEG /聚己内酯(PCL)多碳支架。特征在于杂化APS-Co-PEG / PCL电纺支架的纤维形态,化学成分,机械性能,可降解性和细胞栓塞性。这些支架表现出广泛的机械性能和与PCL支架相似的细胞粘合性。重要的是,与PCL和APS / PCL支架相比,PEG化抑制了所有APS-Co-PEG / PCL电纺支架上的血小板粘附,表明在体内缓解血栓形成性中的潜在作用。另外,发现APS-25PEG / PCL支架被机械地类似于人体心脏瓣膜瓣叶和人主动脉瓣膜细胞的附着。这些结果表明,杂交APS-Co-PEG / PCL支架可以作为软组织工程,尤其是心脏瓣膜组织工程的承诺构建。版权所有(c)2017 John Wiley&Sons,Ltd。

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