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Interaction of Plasma Deposited HMDSO-Based Coatings with Fibrinogen and Human Blood Plasma: The Correlation between Bulk Plasma, Surface Characteristics and Biomolecule Interaction

机译:血浆沉积的基于HMDSO的涂层与纤维蛋白原和人血浆的相互作用:大体积血浆,表面特征与生物分子相互作用之间的相关性

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摘要

The success of a biomaterial depends on the nature of interaction and the progressive reaction between the biological components and the surface of the biomaterial. In order to control the interaction between the biomaterial and biological component, it is necessary to understand the factors that influence the protein adsorption and cell proliferation. Surface chemistry plays a crucial role in the success of any blood contacting biomaterial. Plasma enhanced chemical vapour deposition (PECVD) is an interesting commonly used technique for tailoring surface characteristics while retaining bulk material properties. Two different films, namely polymer-like and silica-like coatings, with varying surface characteristics have been deposited from hexamethyldisiloxane, by PECVD, on 316L stainless steel. A correlation between the bulk plasma, interfacial adhesion of the coating to 316L steel, surface characteristics and biomolecule interaction is presented in this work. The interfacial adhesion strength analysis demonstrated that silica-like coatings have higher adhesion strength to 316L stainless steel than polymer-like coatings, caused due to the formation of a strong Fe-O-Si and -Cr-O-Si bonds. It was observed that the effect of nanoscale surface roughness (close to 6 nm) was less significant, and that the surface chemistry played a significant role in governing the fibrinogen adsorption. Highest fibrinogen adsorption on plain steel was due to the electrostatic interaction of the metal oxide layer with the protein. Hydrophobicity of the polymer-like film resulted in a higher fibrinogen binding than the silica-like films.
机译:生物材料的成功取决于相互作用的性质以及生物成分与生物材料表面之间的进行性反应。为了控制生物材料和生物成分之间的相互作用,有必要了解影响蛋白质吸附和细胞增殖的因素。表面化学在任何血液接触生物材料的成功中都起着至关重要的作用。等离子体增强化学气相沉积(PECVD)是一种有趣的常用技术,可在保留块状材料特性的同时调整表面特性。六甲基二硅氧烷通过PECVD在316L不锈钢上沉积了两种不同的膜,即具有类似表面特性的聚合物类和类二氧化硅涂层。这项工作提出了整体等离子体,涂层与316L钢的界面粘附力,表面特性和生物分子相互作用之间的相关性。界面粘合强度分析表明,由于形成了牢固的Fe-O-Si和-Cr-O-Si键,二氧化硅类涂层对316L不锈钢的粘合强度比聚合物类涂层高。观察到纳米级表面粗糙度(接近6 nm)的影响不太明显,并且表面化学在控制纤维蛋白原吸附方面起着重要作用。普通钢上纤维蛋白原的最高吸附是由于金属氧化物层与蛋白质之间的静电相互作用。聚合物状膜的疏水性导致比二氧化硅状膜更高的纤维蛋白原结合。

著录项

  • 来源
    《Plasma processes and polymers》 |2010年第5期|411-421|共11页
  • 作者单位

    Biomedical Diagnostics Institute, Dublin City University, Dublin 9, Ireland;

    rnNational Institute for Cellular Biotechnology (NICB), Dublin City University, Dublin 9, Ireland;

    rnBiomedical Diagnostics Institute, Dublin City University, Dublin 9, Ireland;

    rnBiomedical Diagnostics Institute, Dublin City University, Dublin 9, Ireland National Centre for Plasma Science and Technology, Dublin City University, Dublin 9, Ireland;

    rnBiomedical Diagnostics Institute, Dublin City University, Dublin 9, Ireland Research Centre in Physics of Matter and Radiation (PMR), University of Namur (FUNDP) 61, rue de Bruxelles, B-5000 Namur, Belgium;

    rnBiomedical Diagnostics Institute, Dublin City University, Dublin 9, Ireland;

    rnArchport Ltd, Dublin City University, Dublin 9, Ireland;

    rnBiomedical Diagnostics Institute, Dublin City University, Dublin 9, Ireland National Centre for Plasma Science and Technology, Dublin City University, Dublin 9, Ireland;

    rnNational Institute for Cellular Biotechnology (NICB), Dublin City University, Dublin 9, Ireland;

    rnNational Institute for Cellular Biotechnology (NICB), Dublin City University, Dublin 9, Ireland;

    rnASTRaL, Lappeenranta University of Technology, PO Box 181, FI-50101 Mikkeli, Finland;

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

    biocompatibility; cell culture; plasma enhanced chemical vapour deposition (PECVD); protein adsorption; roughness; surfaces; surface modification; surface roughness; wettability;

    机译:生物相容性细胞培养;等离子体增强化学气相沉积(PECVD);蛋白质吸附;粗糙度表面;表面改性;表面粗糙度;润湿性;

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