利用蒙特卡罗方法对大型生物分子组装体的小角散射曲线进行有效分析

IF 5.2 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Huat Thart Chiang, Zhiyin Zhang, Kiran Vaddi, F. Akif Tezcan, Lilo D. Pozzo
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引用次数: 0

摘要

从大生物分子组装体的小角度散射曲线进行结构解析是非常具有挑战性的。这是因为模拟大型大分子组装(如新生蛋白质组装)结构中的高分辨率特征,当需要覆盖大范围的长度尺度时,计算要求很高。传统的方法,如德拜方程的数值近似或球面谐波的使用,随着组装尺寸的增加而不能很好地扩展,这限制了它们在小结构(例如单个蛋白质)中的应用。这项工作探索了蒙特卡罗方法在模拟和拟合大型生物分子组装的散射曲线方面的有效性,这些组装跨越了涵盖原子和分子细节(例如组装中蛋白质的间距和方向)以及大规模(数百纳米)特征的范围。由于其速度和可扩展性,它可以与拟合算法相结合,从生物分子组装的实验小角度散射曲线中提取结构特征,否则难以解释。这项工作首先利用瓦片状蛋白质组装成一维管状大分子结构的实验小角度x射线散射(SAXS)数据证明了该工具的有效性。从SAXS拟合中提取管的直径分布,并将其与电子显微镜的分布进行定量比较。SAXS数据也可从二维类薄片蛋白质组件中获得,该方法可用于量化结构特征,如蛋白质构建块之间的分离距离和薄片的弯曲度。该方法的开源实现提供用于涉及多尺度散射分析的广泛生物系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Efficient analysis of small-angle scattering curves for large biomolecular assemblies using Monte Carlo methods

Structure elucidation from small-angle scattering curves of large biomolecular assemblies is notoriously challenging. This is because the simulation of high-resolution features in the structure of large macromolecular assemblies, such as de novo protein assemblies, is computationally demanding when it needs to cover a broad range of length scales. Conventional methods, such as the numerical approximation to the Debye equation or the use of spherical harmonics, do not scale well as the size of the assembly increases, which limits their application to small structures (e.g. individual proteins). This work explores the effectiveness of a Monte Carlo method to simulate and fit scattering curves for large biomolecular assemblies spanning over ranges covering atomic and molecular detail (e.g. spacing and orientation of proteins in an assembly) as well as large-scale (hundreds of nanometres) features. Owing to its speed and scalability, it can be combined with a fitting algorithm to extract structural features from experimental small-angle scattering curves in biomolecular assemblies that are otherwise intractable for interpretation. This work first demonstrates the effectiveness of the tool using experimental small-angle X-ray scattering (SAXS) data from tile-like proteins that assemble into 1D tube-like macromolecular structures. The diameter distribution of tubes is extracted from SAXS fits, and this is quantitatively compared with distributions from electron microscopy. SAXS data are also obtained from 2D sheet-like protein assemblies, and the proposed method is used to quantify structural features such as the separation distance between protein building blocks and the flexing of the sheet. An open-source implementation of the methodology is provided for use in a broad range of biological systems involving multi-scale scattering analysis.

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来源期刊
Journal of Applied Crystallography
Journal of Applied Crystallography CHEMISTRY, MULTIDISCIPLINARYCRYSTALLOGRAPH-CRYSTALLOGRAPHY
CiteScore
7.80
自引率
3.30%
发文量
178
期刊介绍: Many research topics in condensed matter research, materials science and the life sciences make use of crystallographic methods to study crystalline and non-crystalline matter with neutrons, X-rays and electrons. Articles published in the Journal of Applied Crystallography focus on these methods and their use in identifying structural and diffusion-controlled phase transformations, structure-property relationships, structural changes of defects, interfaces and surfaces, etc. Developments of instrumentation and crystallographic apparatus, theory and interpretation, numerical analysis and other related subjects are also covered. The journal is the primary place where crystallographic computer program information is published.
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