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首页> 外文期刊>Journal of biomedical materials research. Part B, Applied biomaterials. >Development of an electrospun biomimetic polyurea scaffold suitable for vascular grafting
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Development of an electrospun biomimetic polyurea scaffold suitable for vascular grafting

机译:适用于血管嫁接的Electrom纺织仿生聚脲支架的开发

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The optimization of biomechanical and biochemical properties of a vascular graft to render properties relevant to physiological environments is a major challenge today. These critical properties of a vascular graft not only regulate its stability and integrity, but also control invasion of cells for scaffold remodeling permitting its integration with native tissue. In this work, we have synthesized a biomimetic scaffold by electrospinning a blend of a polyurea, poly(serinol hexamethylene urea) (PSHU), and, a polyester, poly-epsilon-caprolactone (PCL). Mechanical properties of the scaffold were varied by varying polymer blending ratio and electrospinning flow rate. Mechanical characterization revealed that scaffolds with lower PSHU content relative to PCL content resulted in elasticity close to native mammalian arteries. We also found that increasing electrospinning flow rates also increased the elasticity of the matrix. Optimization of elasticity generated scaffolds that enabled vascular smooth muscle cells (SMCs) to adhere, grow and maintain a SMC phenotype. The 30/70 scaffold also underwent slower degradation than scaffolds with higher PSHU content, thereby, providing the best option for in vivo remodeling. Further, Gly-Arg-Gly-Asp-Ser (RGD) covalently conjugated to the polyurea backbone in 30/70 scaffold resulted in significantly increased clotting times. Reducing surface thrombogenicity by the conjugation of RGD is critical to avoiding intimal hyperplasia. Hence, biomechanical and biochemical properties of a vascular graft can be balanced by optimizing synthesis parameters and constituent components. For these reasons, the optimized RGD-conjugated 30/70 scaffold electrospun at 2.5 or 5 mL/h has great potential as a suitable material for vascular grafting applications. (c) 2017 Wiley Periodicals, Inc. J Biomed Mater Res Part B: Appl Biomater, 106B: 278-290, 2018.
机译:血管移植物的生物力学和生化特性的优化,使与生理环境相关的性质是今天的主要挑战。血管移植物的这些关键特性不仅调节其稳定性和完整性,而且还可以控制用于支架重塑的细胞的侵袭,允许其与天然组织的整合。在这项工作中,我们通过静电纺丝通过孔纺丝,聚酯(钠六亚甲基脲)(PSHU)和聚酯,聚酯,聚酯,PCL)来合成仿生支架。通过不同的聚合物共混比和静电纺丝流速来改变支架的机械性能。机械表征显示,相对于PCL含量较低的PSHU含量的支架导致对本地哺乳动物动脉接近的弹性。我们还发现,增加的静电纺丝流速也增加了基质的弹性。弹性优化产生的支架使使血管平滑肌细胞(SMC)粘附,生长和维持SMC表型。 30/70支架的较高的降解也比具有较高PSHU含量的支架较慢,从而为体内重塑提供了最佳选择。此外,与30/70支架中的聚脲骨架共价缀合的Gly-Arg-Gly-ASP-SER(RGD)导致凝血时间显着增加。通过RGD的缀合降低表面血栓形成性对于避免内膜增生至关重要。因此,通过优化合成参数和组成部分可以平衡血管移植物的生物力学和生化特性。出于这些原因,在2.5或5mL / h的优化RGD-缀合的30/70支架电纺器中具有巨大的血管移植应用材料的潜力。 (c)2017年Wiley期刊,Inc。J生物保解员B:Appl Biomater,106B:278-290,2018。

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