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Assessment of Parylene C Thin Films for Heart Valve Tissue Engineering

机译:用于心脏瓣膜组织工程的Parylene C薄膜的评估

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摘要

>Background: Scaffolds are a key component of tissue-engineered heart valves (TEHVs). Several approaches had been adopted in the design of scaffolds using both natural and synthetic resources. We have investigated the suitability of parylene C (PC), a vapor deposited polymeric material, for the use as a scaffold in TEHV.>Aims: To evaluate the adsorption of extracellular matrix components onto plasma-activated PC and study the biocompatibility of PC by measuring cellular adhesion, viability, apoptosis, and phenotypic expression of valve endothelial and interstitial cells. Finally, the mechanical properties of PC were compared with those of native aortic valve cusp tissue.>Methods: PC slides were plasma activated and then coated with gelatin, type I collagen, or fibronectin. Porcine pulmonary valve endothelial and interstitial cells were then grown on plasma oxidized PC with different types of coatings and their adhesion was observed after 20 h of incubation. Cell viability was tested using the MTS assay, and apoptosis was estimated using TUNEL staining. The mechanical properties of PC and valve tissue were measured using a Bose Mechanical Tester. Finally, cell-seeded PC films were exposed to pulsatile pressure and aortic shear stress, respectively, to test their durability in a dynamic environment.>Results: Our findings show that collagen and fibronectin could bind to plasma oxidized PC. Both valve endothelial and interstitial cells adhered to protein-coated ECM. PC had a profile of mechanical stiffness and ultimate tensile strength that were comparable with or in excess of those seen in porcine aortic valve cusps. Cells were still attached to PC films after 3 days of exposure to up to 50 mmHg pulsatile pressure or aortic levels of shear stress.>Conclusion: PC is a promising candidate for use as a scaffold in tissue engineering heart valves. Additional studies are required to determine both the durability and long-term performance of cell-seeded PC when in a similar hemodynamic environment to that of the aortic valve.
机译:>背景:支架是组织工程心脏瓣膜(TEHV)的关键组成部分。使用天然和合成资源在脚手架设计中采用了几种方法。我们已经研究了气相沉积的聚合材料聚对二甲苯C(PC)用作TEHV支架的适用性。>目的:以评估细胞外基质组分在血浆活化的PC和通过测量瓣膜内皮细胞和间质细胞的细胞粘附性,生存力,凋亡和表型表达来研究PC的生物相容性。最后,将PC的机械性能与天然主动脉瓣尖组织进行比较。>方法:将PC玻片进行血浆活化,然后涂上明胶,I型胶原或纤连蛋白。猪肺动脉瓣内皮细胞和间质细胞随后在具有不同类型涂层的血浆氧化PC上生长,在孵育20小时后观察到它们的粘附。使用MTS分析测试细胞活力,并使用TUNEL染色评估细胞凋亡。使用Bose机械测试仪测量PC和瓣膜组织的机械性能。最后,将播种有细胞的PC膜分别暴露于脉动压力和主动脉切应力下,以测试其在动态环境中的耐久性。>结果:我们的研究结果表明,胶原蛋白和纤连蛋白可以与血浆氧化的PC结合。瓣膜内皮细胞和间质细胞均粘附于蛋白包被的ECM。 PC具有的机械刚度和极限抗拉强度与猪主动脉瓣尖相当或超过。在暴露于最高50 mmHg的脉动压力或主动脉水平的剪切应力下3天后,细胞仍会附着在PC膜上。>结论: PC是在组织工程心脏瓣膜中用作支架的有希望的候选者。在与主动脉瓣相似的血液动力学环境中,需要进行其他研究来确定接种细胞的PC的耐久性和长期性能。

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