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Nanocomposite coating produced by laser-assisted process to prevent bacterial contamination and protein fouling

机译:激光辅助工艺生产的纳米复合涂料以防止细菌污染和蛋白质污染

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Zinc oxide (ZnO) nanoparticles incorporating within polyethylene glycol (PEG) were deposited on the surface of silicone hydrogel through matrix-assisted pulsed laser evaporation (MAPLE). In this process, frozen sample was irradiated under a pulsed Nd: YAG 532nm laser for one hour. The MAPLE process is able to maintain the chemical backbone of polymer, and prevents the nanocomposite coating from contamination. Our results indicate that the ZnO-PEG nanocomposite coating reduces over 50% protein absorption on silicone hydrogel. The cytotoxicity study shows that the ZnO-PEG nanocomposites deposited on silicone hydrogels do not impose the toxic effect on mouse NIH/3T3 cells. In addition, MAPLE-deposited ZnO-PEG nanocomposite inhibits the bacterial growth significantly. After 4 hours' culturing, the relative numbers of E. coli on the nanocomposite coated silicone hydrogel declines to 0.07. Consequently, the ZnO-PEG deposited by MAPLE process can significantly prevent silicone hydrogels from protein fouling and bacterial contamination.
机译:掺入聚乙二醇(PEG)内的氧化锌(ZnO)纳米颗粒通过基质辅助脉冲激光蒸发(Maple)沉积在硅氧烷水凝胶的表面上。在该过程中,在脉冲Nd:YAG 532NM激光器下照射冷冻样品1小时。枫木工艺能够维持聚合物的化学骨架,并防止纳米复合涂层污染。我们的结果表明,ZnO-PEG纳米复合材料涂层在硅氧烷水凝胶上减少了超过50%的蛋白质吸收。细胞毒性研究表明,沉积在硅氧烷水凝胶上的ZnO-PEG纳米复合材料不会对小鼠NIH / 3T3细胞施加毒性作用。此外,枫叶沉积的ZnO-PEG纳米复合材料显着抑制细菌生长。 4小时后培养后,纳米复合材料涂覆的硅氧烷水凝胶的大肠杆菌的相对数量下降至0.07。因此,由枫木过程沉积的ZnO-PEG可以显着地防止来自蛋白质污染和细菌污染的硅氧烷水凝胶。

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