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首页> 外文期刊>Journal of the Serbian Chemical Society >Scanning probe microscopy characterisation of immobilised enzyme molecules on a biosensor surface: visualisation of individual molecules
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Scanning probe microscopy characterisation of immobilised enzyme molecules on a biosensor surface: visualisation of individual molecules

机译:生物传感器表面上固定化酶分子的扫描探针显微镜表征:单个分子的可视化

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摘要

Scanning probe microscopy techniques were used to study immobilised enzyme molecules of glucose oxidase (GOD) on a biosensor surface. The study was carried out in order to optimise atomic force microscopy (AFM) imaging and reveal the molecular resolution of individual GOD molecules. Chemically modified AFM tips and the light tapping mode were found to be the optimal conditions for imaging soft biomolecules such as GOD. The information obtained from the AFM images included spatial distribution and organization of the enzyme molecules on the surface, surface coverage and shape, size and orientation of individual molecules. Two typical shapes of GOD molecules were found, spherical and butterflym which are in accordance with the shapes obtained from scanning tunnelling microscopy (STM) images. Using a model of the orientation of the GOD molecules on the surface, these shapes are assigned to the enzyme standing and lying on the surface. After AFM tip deconvolution, the size of the spherical shaped GOD molecules was found to be 12 +- 2.1 nm in diameter, whereas the butterfly shapes were 16.5 - 3.3 nm x 10.2 +- 2.5 nm. Corresponding STM images showed smaller lateral dimensions of 10 +- 1 nm x 6 +- 1 nm and 6.5 +- 1 nm x 5 +- 1 nm. The disagreement between these two techniques is attributed to the deformation of the GOD molecules caused by the tapping process.
机译:扫描探针显微镜技术用于研究生物传感器表面上固定的葡萄糖氧化酶(GOD)酶分子。进行这项研究是为了优化原子力显微镜(AFM)成像,并揭示单个GOD分子的分子分辨率。发现化学修饰的AFM尖端和轻敲模式是对诸如GOD之类的软生物分子成像的最佳条件。从AFM图像获得的信息包括表面上酶分子的空间分布和组织,表面覆盖率以及单个分子的形状,大小和方向。找到了两种典型的GOD分子形状:球形和蝶形,这与从扫描隧道显微镜(STM)图像获得的形状一致。使用表面上GOD分子取向的模型,将这些形状分配给站立并躺在表面上的酶。在AFM尖端去卷积之后,发现球形GOD分子的大小为直径12±2.1nm,而蝴蝶形状为16.5〜3.3nm×10.2±2.5nm。相应的STM图像显示出较小的横向尺寸,即10±1nm×6±1nm和6.5±1nm×5±1nm。这两种技术之间的分歧归因于攻丝过程引起的GOD分子变形。

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