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Gelatin modified ultrathin silk fibroin films for enhanced proliferation of cells

机译:明胶修饰的超薄丝素蛋白膜增强细胞增殖

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摘要

Silk fibroin (SF) films were modified with gelatin (G) to explore if such SF/G films could enhance the surface biocompatibility of silk as cell growth biomaterials. Ultrathin films were coated from aqueous SF solutions pre-mixed with different amounts of G. It was found that the SF/G blended films after methanol treatment were highly stable in physiological conditions. The incorporation of G smoothed the surface morphology of the SF/G films formed. Surface-exposed RGD sequences were successfully identified on the SF/G films through specific recognition of an integrin-mimicking peptide (bearing the sequence of CWDDGWLC). Cell culture experiments with 3T3 fibroblasts demonstrated that SF/G films with 1.2-20% (w/w) G gave clear improvement in promoting cell attachment and proliferation over pure SF films. Films containing 10-20% (w/w) of G showed cell attachment and growth even superior to the pure G films. The differences as observed from this study suggest that due to the lack of mechanical strength associated with its high solubility, G could not work alone as a cell growth scaffold. The enhanced cellular responses from the blended SF/G films must result from improvement in film stability arising from SF and in cytocompatibility arising from G. The results thus indicate the potential of the SF/G blends in tissue engineering and biomedical engineering where physical and biological properties could be manipulated via mixing either as bulk biomaterials or for coating purposes.
机译:用明胶(G)修饰丝素蛋白(SF)膜以研究这种SF / G膜是否可以增强丝绸作为细胞生长生物材料的表面生物相容性。从预先混有不同量G的SF水溶液中涂覆超薄膜。发现甲醇处理后的SF / G混合膜在生理条件下非常稳定。 G的引入使所形成的SF / G膜的表面形态变得光滑。通过特异性识别整合素模拟肽(带有CWDDGWLC的序列),在SF / G胶片上成功鉴定了表面暴露的RGD序列。用3T3成纤维细胞进行的细胞培养实验表明,与纯SF膜相比,具有1.2-20%(w / w)G的SF / G膜在促进细胞附着和增殖方面具有明显的改善。含有10-20%(w / w)G的薄膜显示出细胞附着和生长,甚至优于纯G薄膜。从这项研究中观察到的差异表明,由于缺乏与其高溶解度相关的机械强度,G不能单独用作细胞生长支架。混合的SF / G膜增强的细胞反应必须归因于SF产生的膜稳定性和G产生的细胞相容性的改善。结果因此表明SF / G混合物在组织工程和生物医学工程中具有潜在的物理和生物学潜力可以通过混合作为大块生物材料或用于涂层目的来控制其特性。

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