从原子力显微镜拓扑图三维重建单个螺旋纳米丝结构。

Q2 Biochemistry, Genetics and Molecular Biology Biomolecular Concepts Pub Date : 2020-05-06 DOI:10.1515/bmc-2020-0009
Liisa Lutter, Christopher J Serpell, Mick F Tuite, Louise C Serpell, Wei-Feng Xue
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引用次数: 0

摘要

原子力显微镜(AFM)是一种功能强大的工具,可生成单个纳米结构的详细地形图像,信噪比高,无需进行集合平均。然而,原子力显微镜在结构生物学中的应用一直受到针尖-样品卷积效应的阻碍,这种效应会扭曲纳米结构的图像,尤其是那些与原子力显微镜使用的悬臂探针针尖尺寸相似的纳米结构。在这里,我们展示了针尖-样本卷积会导致原子力显微镜拓扑图上的图像分辨率出现依赖于特征的非均匀分布。我们展示了如何将这种效应用于纳米级上凸物体(如沉积在平面上的球形或丝状分子组装体)的结构研究,因为它会导致这类物体在原子力显微镜地形图上 "放大"。随后,通过对原子力显微镜拓扑图进行基于接触点的解卷积,利用这种增强效应。在此,我们通过使用接触解卷积 AFM 拓扑图对单个螺旋淀粉样蛋白丝的表面包络进行三维重建,而无需进行跨粒子平均,从而展示了这种方法的应用。要从机理上理解淀粉样蛋白毒性和朊病毒菌株等许多生物现象,最重要的是解决固有异质群体中单个大分子组装体的结构变化问题。本文介绍的方法还将有助于利用原子力显微镜对单个分子组装体进行高分辨率结构研究和综合结构生物学分析。
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Three-dimensional reconstruction of individual helical nano-filament structures from atomic force microscopy topographs.

Atomic force microscopy, AFM, is a powerful tool that can produce detailed topographical images of individual nano-structures with a high signal-to-noise ratio without the need for ensemble averaging. However, the application of AFM in structural biology has been hampered by the tip-sample convolution effect, which distorts images of nano-structures, particularly those that are of similar dimensions to the cantilever probe tips used in AFM. Here we show that the tip-sample convolution results in a feature-dependent and non-uniform distribution of image resolution on AFM topographs. We show how this effect can be utilised in structural studies of nano-sized upward convex objects such as spherical or filamentous molecular assemblies deposited on a flat surface, because it causes 'magnification' of such objects in AFM topographs. Subsequently, this enhancement effect is harnessed through contact-point based deconvolution of AFM topographs. Here, the application of this approach is demonstrated through the 3D reconstruction of the surface envelope of individual helical amyloid filaments without the need of cross-particle averaging using the contact-deconvoluted AFM topographs. Resolving the structural variations of individual macromolecular assemblies within inherently heterogeneous populations is paramount for mechanistic understanding of many biological phenomena such as amyloid toxicity and prion strains. The approach presented here will also facilitate the use of AFM for high-resolution structural studies and integrative structural biology analysis of single molecular assemblies.

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来源期刊
Biomolecular Concepts
Biomolecular Concepts Biochemistry, Genetics and Molecular Biology-Biochemistry, Genetics and Molecular Biology (all)
CiteScore
5.30
自引率
0.00%
发文量
27
审稿时长
12 weeks
期刊介绍: BioMolecular Concepts is a peer-reviewed open access journal fostering the integration of different fields of biomolecular research. The journal aims to provide expert summaries from prominent researchers, and conclusive extensions of research data leading to new and original, testable hypotheses. Aspects of research that can promote related fields, and lead to novel insight into biological mechanisms or potential medical applications are of special interest. Original research articles reporting new data of broad significance are also welcome. Topics: -cellular and molecular biology- genetics and epigenetics- biochemistry- structural biology- neurosciences- developmental biology- molecular medicine- pharmacology- microbiology- plant biology and biotechnology.
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