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Surface Modification of Polymers for Tissue EngineeringApplications: Arginine Acts as a Sticky Protein Equivalent for ViableCell Accommodation

机译:用于组织工程的聚合物的表面改性应用:精氨酸可作为有活力的粘性蛋白细胞住宿

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摘要

Hydrophobic polymers, for their favorable mechanical properties, are a popular choice as permanent bioimplants. These materials remain absolutely bioinert for years, but throw up challenges when it comes to fast integration with healthy tissue. Addressing this, herein, we present a surface-modification technique of converting the hydrophobic surface of a polymeric film into a hydrophilic one using a layer-by-layer assembly process involving gold nanoparticles and small molecules like amino acids. These films showed much improved animal cell (murine fibroblast) adherence properties compared to commercially available tissue culture plates. Moreover, arginine-modified films exhibited a nearly equivalent cell viability compared to the films modified with the natural extracellular matrix component fibronectin. The surface hydrophilicity and roughness of our novel film were characterized by contact angle measurement and atomic force microscopy. Cell counting, fluorescence microscopy, cell viability, and collagen estimation assay were employed to demonstrate that our film favored a much improvedcell adherence, and accommodation in comparison to the commerciallyavailable tissue culture plates.
机译:疏水聚合物因其良好的机械性能而成为永久性生物植入物的普遍选择。这些材料在数年内绝对保持生物惰性,但在与健康组织快速融合方面提出了挑战。为了解决这个问题,在本文中,我们提出一种表面改性技术,该技术使用涉及金纳米颗粒和氨基酸等小分子的逐层组装工艺将聚合物膜的疏水性表面转化为亲水性表面。与可购得的组织培养板相比,这些膜显示出大大改善的动物细胞(鼠成纤维细胞)粘附特性。而且,与用天然细胞外基质成分纤连蛋白修饰的膜相比,精氨酸修饰的膜表现出几乎相同的细胞活力。通过接触角测量和原子力显微镜表征了我们新型薄膜的表面亲水性和粗糙度。细胞计数,荧光显微镜,细胞生存力和胶原蛋白估计试验被用来证明我们的膜对改善有很大的帮助细胞粘附性和适应性与商业性相比可用组织培养板。

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