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独立控制表面电荷和润湿性下的优势白蛋白-表面相互作用。

Dominant Albumin-Surface Interactions under Independent Control of Surface Charge and Wettability.

机构信息

NUS Graduate School for Integrative Science and Engineering, National University of Singapore , Kent Ridge, 117576, Singapore.

Department of Chemical and Biomolecular Engineering, National University of Singapore , 4 Engineering Drive 4, 119260, Singapore.

出版信息

Langmuir. 2018 Feb 6;34(5):1953-1966. doi: 10.1021/acs.langmuir.7b04117. Epub 2018 Jan 23.

Abstract

Understanding protein adsorption behaviors on solid surfaces constitutes an important step toward development of efficacious and biocompatible medical devices. Both surface charge and wettability have been shown to influence protein adsorption attributes, including kinetics, quantities, deformation, and reversibility. However, determining the dominant interaction in these surface-induced phenomena is challenging because of the complexity of inter-related mechanisms at the liquid/solid interface. Herein, we reveal the dominant interfacial forces in these essential protein adsorption attributes under the influence of a combination of surface charge and wettability, using quartz crystal microbalance with dissipation monitoring and atomic force microscopy-based force spectroscopy on a series of model surfaces. These surfaces were fabricated via layer-by-layer assembly, which allowed two-dimensional control of surface charge and wettability with minimal cross-parameter dependency. We focused on a soft globular protein, bovine serum albumin (BSA), which is prone to conformational changes during adsorption. The information obtained from the two techniques shows that both surface charge and hydrophobicity can increase the protein-surface interaction forces and the adsorbed amount. However, surface hydrophobicity triggered a greater extent of deformation in the adsorbed BSA molecules, leading to more dehydration, spreading, and resistance to elution by ionic strength changes regardless of the surface charge. The role played by the surface charge in the adsorbed protein conformation and extent of desorption induced by changes in the ionic strength is secondary to that of surface hydrophobicity. These findings advance the understanding of how surface chemistry and properties can be tailored for directing protein-substrate interactions.

摘要

了解蛋白质在固体表面的吸附行为是开发有效和生物相容的医疗设备的重要步骤。表面电荷和润湿性都被证明会影响蛋白质吸附的属性,包括动力学、数量、变形和可逆性。然而,由于液体/固体界面上相关机制的复杂性,确定这些表面诱导现象中的主要相互作用具有挑战性。在此,我们使用石英晶体微天平(QCM-D)和基于原子力显微镜(AFM)的力谱法,在一系列模型表面上研究了在表面电荷和润湿性组合影响下这些基本蛋白质吸附属性中的主要界面力。这些表面是通过层层组装而成的,这使得可以在最小的交叉参数依赖性的情况下,对表面电荷和润湿性进行二维控制。我们专注于一种柔软的球状蛋白质,牛血清白蛋白(BSA),它在吸附过程中容易发生构象变化。这两种技术获得的信息表明,表面电荷和疏水性都可以增加蛋白质-表面相互作用力和吸附量。然而,表面疏水性会导致吸附的 BSA 分子发生更大程度的变形,导致更多的去水、扩散和抵抗离子强度变化引起的洗脱,而不管表面电荷如何。表面电荷在离子强度变化引起的吸附蛋白质构象和解吸程度中所起的作用次于表面疏水性。这些发现提高了我们对如何通过表面化学和性质的调整来指导蛋白质-底物相互作用的理解。

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