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蛋白质在低温各向同性碳上的吸附:I. 用差示扫描量热法探测蛋白质的构象变化。

Protein adsorption on low-temperature isotropic carbon: I. Protein conformational change probed by differential scanning calorimetry.

作者信息

Feng L, Andrade J D

机构信息

Department of Bioengineering, University of Utah, Salt Lake City 84112.

出版信息

J Biomed Mater Res. 1994 Jun;28(6):735-43. doi: 10.1002/jbm.820280611.

Abstract

This is the first of a set of articles on protein adsorption on low-temperature isotropic carbon (LTIC), a reputed blood compatible material. Surface-induced conformational changes of albumin, fibrinogen, and some small proteins were measured by differential scanning calorimetry (DSC) on LTIC powders and colloidal silica. The LTIC surface significantly alters the DSC response (denaturation?) in proteins studied in different buffer solutions. We use the term "denaturation" to refer to altered protein behavior in the adsorbed state. Hydrophobic interactions between LTIC and the proteins are thought to be the major driving force. The presence of air at the water-carbon interface seems to prevent the surface denaturation of fibrinogen. The silica surface greatly denatures albumin but only slightly denatures fibrinogen. Because LTIC is considered to be a nonthrombogenic material, but silica is considered to be a thrombogenic one, whether a surface denatures adsorbed proteins cannot be the sole criterion for its blood compatibility. The latter largely depends on what protein the surface denatures, and in what sequences.

摘要

这是关于低温各向同性碳(LTIC)表面蛋白质吸附的系列文章中的第一篇,LTIC是一种著名的血液相容性材料。通过差示扫描量热法(DSC)测量了LTIC粉末和胶体二氧化硅上白蛋白、纤维蛋白原以及一些小蛋白质的表面诱导构象变化。在不同缓冲溶液中研究的蛋白质,LTIC表面显著改变了DSC响应(变性?)。我们用“变性”一词来指代吸附状态下蛋白质行为的改变。LTIC与蛋白质之间的疏水相互作用被认为是主要驱动力。水 - 碳界面处空气的存在似乎可防止纤维蛋白原的表面变性。二氧化硅表面会使白蛋白大幅变性,但只会使纤维蛋白原轻微变性。由于LTIC被认为是一种抗血栓形成材料,而二氧化硅被认为是一种促血栓形成材料,所以表面是否使吸附的蛋白质变性不能作为其血液相容性的唯一标准。后者很大程度上取决于表面使何种蛋白质变性以及变性的顺序。

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