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Substrate Chemistry-Dependent Conformations of Single Laminin Molecules on Polymer Surfaces are Revealed by the Phase Signal of Atomic Force Microscopy

机译:聚合物表面上单层粘连蛋白分子的基质化学依赖性构象通过原子力显微镜的相位信号揭示。

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摘要

The conformation of single laminin molecules adsorbed on synthetic substrates is directly observed making use of the phase magnitude in tapping mode atomic force microscopy (AFM). With AFM, it is not possible to differentiate the proteins on the substrate if use is made of the height signal, since the roughness of the material becomes of the same order of magnitude as the adsorbed protein, typically 10 nm height. This work shows how AFM can be exploited to reveal protein conformation on polymer materials. Different laminin morphologies are observed on a series of different copolymers based on ethyl acrylate and hydroxyethyl acrylate as a function of the surface density of −OH groups: from globular to completely extended morphologies of the protein molecules are obtained, and the onset of laminin network formation on some substrates can be clearly identified. The results stress the importance of the underlying synthetic substrate's surface chemistry for the biofunctional conformation of adsorbed proteins.
机译:利用敲击模式原子力显微镜(AFM)中的相位幅度,可以直接观察到吸附在合成基质上的单层粘连蛋白分子的构象。对于AFM,如果使用高度信号,则不可能在基质上区分蛋白质,因为材料的粗糙度与被吸附的蛋白质的数量级相同,通常为10 nm。这项工作表明如何利用AFM揭示聚合物材料上的蛋白质构象。在一系列基于丙烯酸乙酯和丙烯酸羟乙酯的不同共聚物上观察到不同的层粘连蛋白形态,这是-OH基团的表面密度的函数:获得了从球形到完全延伸的蛋白质分子形态,并开始了层粘连蛋白网络的形成在某些基材上可以清楚地识别出。结果强调了潜在的合成基质的表面化学对于吸附蛋白的生物功能构象的重要性。

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