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Biodegradable free-standing nanomembranes of conducting polymer:polyester blends as bioactive platforms for tissue engineering

机译:导电聚合物的可生物降解的独立式纳米爆炸:聚酯混合物作为组织工程的生物活性平台

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摘要

The present study reports the fabrication of free-standing nanomembranes with semiconducting and biodegradable properties. Nanomembranes have been prepared by spin-coating mixtures of a semiconducting polythiophene derivative, poly(3-thiophene methyl acetate), and a biodegradable polyester, poly(tetramethylene succinate). Both the roughness and thickness of the nanomembranes, which ranged from 3 to 20 nm and from 20 to 80 nm, respectively, were precisely controlled through the spin-coater speed and the solvent evaporation properties. Nanomembranes made of conducting polymer/polyester blends, which are able to retain the properties of the individual polymers, are stable in air and in ethanol solution for more than one year, facilitating their manipulation. Enzymatic degradation essays indicated that the ultra-thin films are biodegradable due to the presence of the aliphatic polyester. Interestingly, adhesion and proliferation assays with epithelial cells revealed that the behavior of the blend as cellular matrix is superior to that of the two individual polymers, validating the use of the nanomembranes as bioactive substrates for tissue regeneration.
机译:本研究报告与半导体和生物可降解性独立的纳米薄膜制造。纳米膜已经制备由半导体聚噻吩衍生物,聚(3-噻吩甲基乙酸酯),和生物可降解的聚酯,聚(四亚甲基琥珀酸酯)的旋涂的混合物。既粗糙度和厚度的纳米薄膜,其范围从3至20纳米和20至80纳米的,分别精确地通过旋涂机速度以及溶剂蒸发属性控制。由导电聚合物/聚酯共混物的纳米薄膜,其能够保持各个聚合物的性质,是在空气中和在一年以上的乙醇溶液稳定,促进它们的操纵。酶降解的文章表明,超薄膜是生物可降解,由于脂肪族聚酯的存在。有趣的是,与上皮细胞的粘附和增殖测定,发现该掺合物作为细胞外基质的行为是优于两个单独的聚合物的,验证使用纳米膜作为用于组织再生的生物活性底物。

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