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Greater cardiomyocyte density on aligned compared with random carbon nanofibers in polymer composites

机译:与聚合物复合材料中的随机碳纳米纤维相比对齐时的心肌细胞密度更高

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摘要

Carbon nanofibers (CNFs) randomly embedded in poly (lactic-co-glycolic-acid) (PLGA) composites have recently been shown to promote cardiomyocyte growth when compared with conventional PLGA without CNFs. It was shown then that PLGA:CNF composites were conductive and that conductivity increased as greater amounts of CNFs were added to pure PLGA. Moreover, tensile tests showed that addition of CNFs increased the tensile strength of the PLGA composite to mimic that of natural heart tissue. Most importantly, throughout all cytocompatibility experiments, cardiomyocytes were viable and expressed important biomarkers that were greatest on 50:50 wt% CNF:PLGA composites. The increased selective adsorption of fibronectin and vitronectin (critical proteins that mediate cardiomyocyte function) onto such composites proved to be the mechanism of action. However, the natural myocardium is anisotropic in terms of mechanical and electrical properties, which was not emulated in these prior PLGA:CNF composites. Thus, the aim of this in vitro study was to create and characterize CNFs aligned in PLGA composites (at 50:50 wt%, including their mechanical and electrical properties and cardiomyocyte density), comparing such results with randomly oriented CNFs in PLGA. Specifically, CNFs were added to soluble biodegradable PLGA (50:50 PGA:PLA weight ratio) and aligned by applying a voltage and then allowing the polymer to cure. CNF surface micron patterns (20 μm wide) on PLGA were then fabricated through a mold method to further mimic myocardium anisotropy. The results demonstrated anisotropic mechanical and electrical properties and significantly improved cardiomyocyte density for up to 5 days on CNFs aligned in PLGA compared with being randomly oriented in PLGA. These results indicate that CNFs aligned in PLGA should be further explored for improving cardiomyocyte density, which is necessary in numerous cardiovascular applications.
机译:与没有CNF的传统PLGA相比,随机嵌入聚(乳酸-乙醇酸共聚物)(PLGA)复合材料的碳纳米纤维(CNF)最近显示出促进心肌细胞生长的作用。然后表明,PLGA:CNF复合材料具有导电性,并且随着向纯PLGA中添加更多数量的CNF,导电性增加。此外,拉伸试验表明,添加CNF可以提高PLGA复合材料的拉伸强度,以模仿天然心脏组织的拉伸强度。最重要的是,在所有细胞相容性实验中,心肌细胞均具有活力,并表达了重要的生物标志物,这些标志物在50:50 wt%的CNF:PLGA复合材料中表现出最大的特征。纤连蛋白和玻连蛋白(介导心肌细胞功能的关键蛋白)对此类复合材料选择性吸附的增加被证明是其作用机理。然而,就机械和电学性质而言,天然心肌是各向异性的,在这些现有的PLGA:CNF复合材料中没有被模拟。因此,该体外研究的目的是创建和表征在PLGA复合材料中排列的CNF(以50:50 wt%的比例,包括其机械和电性能以及心肌细胞密度),并将这些结果与PLGA中随机定向的CNF进行比较。具体而言,将CNF添加到可溶性生物可降解PLGA(PGA:PLA重量比为50:50)中,并通过施加电压使其对齐,然后使聚合物固化。然后通过模制方法在PLGA上制作CNF表面微米图案(宽20μm),以进一步模拟心肌各向异性。结果表明,与在PLGA中随机定向相比,在PLGA中对齐的CNF上各向异性力学和电学性能显着提高了多达5天的心肌细胞密度。这些结果表明,应进一步探索在PLGA中排列的CNF,以改善心肌细胞密度,这在许多心血管应用中都是必需的。

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