Haemocompatibility of amorphous hydrogenated carbon thin films, optical properties and adsorption mechanisms of blood plasma proteins

S. Lousinian, S. Logothetidis, A. Laskarakis, M. Gioti
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引用次数: 42

Abstract

Haemocompatibility is one of the most important properties, together with the tissue compatibility and corrosion and wear resistance that determine the biocompatibility of the artificial implants. Carbon-based thin films, such as amorphous carbon (a-C) and amorphous hydrogenated diamond-like carbon (a-C:H or DLC) are considered as excellent candidates for use as biocompatible coatings on biomedical implants. The aim of this work is the comparative study of the haemocompatibility of the a-C:H thin films developed by magnetron sputtering under various deposition conditions, the development of a methodology in order to study the haemocompatibility of thin films, the optical properties of the adsorbed proteins (human serum albumin and fibrinogen) and their adsorption mechanisms. Haemocompatibility and the optical properties of a-C:H thin films and the adsorbed proteins were studied by spectroscopic ellipsometry (SE). The films grown under floating conditions performed better haemocompatibility compared with those deposited under application of bias voltage. In the range of vis–UV, proteins are transparent, while they present an absorption peak at higher energies, but except these characteristics, their optical functions are rather featureless. Adsorption mechanisms were studied through AFM technique too. AFM results are in accordance with those derived by SE. Combination of the two techniques gives us a more accurate description of protein adsorption mechanisms.

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非晶氢化碳薄膜的血液相容性、光学性质及血浆蛋白的吸附机制
血液相容性与组织相容性、耐蚀性和耐磨性共同决定了人工种植体的生物相容性。碳基薄膜,如非晶碳(a-C)和非晶氢化类金刚石(a-C:H或DLC)被认为是生物医学植入物生物相容性涂层的优秀候选者。本工作的目的是比较研究磁控溅射制备的a- c:H薄膜在不同沉积条件下的血液相容性,建立一种方法来研究薄膜的血液相容性,吸附蛋白(人血清白蛋白和纤维蛋白原)的光学性质及其吸附机制。利用椭圆偏振光谱(SE)研究了a-C:H薄膜及其吸附蛋白的血液相容性和光学性质。与在偏置电压下沉积的膜相比,在漂浮条件下生长的膜具有更好的血液相容性。在可见-紫外范围内,蛋白质是透明的,而在更高的能量下,它们呈现一个吸收峰,但除了这些特征外,它们的光学功能相当无特征。并通过原子力显微镜技术研究了吸附机理。AFM结果与SE计算结果一致。这两种技术的结合使我们对蛋白质的吸附机理有了更准确的描述。
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