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Effect of oligoethylene glycol moieties in porous silicon surface functionalisation on protein adsorption and cell attachment

机译:低聚乙二醇部分在多孔硅表面功能化中对蛋白质吸附和细胞附着的影响

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摘要

We report on the synthesis of two carboxy-functional alkene compounds as modifiers of porous silicon (pSi) surface chemistry by means of thermal hydrosilylation. Both alkene compounds have hydrophobic, aliphatic carbon segments, with terminal carboxylic acid functionality appended through a thioether linkage. In one of the alkene linkers, we incorporated a short oligoethylene glycol (OEG) moiety to explore its low-fouling properties when attached to porous silicon. We examined surface stability of the surface-modified porous silicon in aqueous milieu. Albumin and fibronectin were adsorbed and, using carbodiimide chemistry, covalently immobilised to linker-modified porous silicon, and the propensity for mammalian cells to attach to these surfaces investigated. Surface chemistry was characterised by infrared spectroscopy and the stability of porous silicon in an aqueous milieu was investigated by interferometric reflectance spectroscopy (IRS). Surfaces functionalised with the alkene linker containing OEG displayed greater resistance to the adsorption of albumin. This linker also facilitated higher levels of covalent protein immobilisation to the functionalised pSi surface. Higher levels of cell attachment were observed on pSi surfaces with fibronectin covalently immobilised onto the OEG linker, than for fibronectin covalently immobilised on the non-OEG linker.
机译:我们报告了通过热氢化硅烷化方法合成的两种羧基官能化烯烃化合物,作为多孔硅(pSi)表面化学改性剂。两种烯烃化合物均具有疏水性脂族碳链段,并通过硫醚键连接末端羧酸官能团。在其中一个烯烃连接基中,我们引入了一个短的低聚乙二醇(OEG)部分,以探索其与多孔硅连接时的低污染特性。我们检查了水性环境中表面改性多孔硅的表面稳定性。吸附白蛋白和纤连蛋白,并利用碳二亚胺化学共价固定在连接基修饰的多孔硅上,并研究了哺乳动物细胞附着于这些表面的倾向。通过红外光谱对表面化学进行了表征,并通过干涉反射光谱法(IRS)研究了多孔硅在水性环境中的稳定性。用含有OEG的烯烃连接基官能化的表面显示出对白蛋白吸附的更大抵抗力。该接头还促进了更高水平的共价蛋白固定在功能化的pSi表面上。与共价固定在非OEG接头上的纤连蛋白相比,在纤连蛋白上共价固定在OEG接头上的pSi表面观察到更高水平的细胞附着。

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  • 来源
    《Applied Surface Science》 |2011年第15期|p.6768-6774|共7页
  • 作者单位

    Flinders University, School of Chemical and Physical Sciences, Bedford Park, South Australia, Australia;

    Flinders University, School of Chemical and Physical Sciences, Bedford Park, South Australia, Australia;

    Flinders University, School of Chemical and Physical Sciences, Bedford Park, South Australia, Australia;

    Flinders University, School of Chemical and Physical Sciences, GPO Box 2100, Bedford Park, Adelaide, South Australia 5042, Australia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    porous silicon; biomaterial; hydrosilylation; oligoethylene glycol; cell culture;

    机译:多孔硅;生物材料;氢化硅烷化;低聚乙二醇;细胞培养;
  • 入库时间 2022-08-18 03:07:03

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