蛋白质x射线扩散散射的再现性和原子位移参数建模的潜在效用。

IF 2.3 2区 物理与天体物理 Q3 CHEMISTRY, PHYSICAL Structural Dynamics-Us Pub Date : 2021-07-08 eCollection Date: 2021-07-01 DOI:10.1063/4.0000087
Zhen Su, Medhanjali Dasgupta, Frédéric Poitevin, Irimpan I Mathews, Henry van den Bedem, Michael E Wall, Chun Hong Yoon, Mark A Wilson
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引用次数: 4

摘要

用x射线晶体学可以探测蛋白质的结构和动力学。然而布拉格峰只对平均单元电子密度敏感,布拉格峰之间的信号——漫射散射——对电子密度变化的空间相关性敏感。尽管漫射散射包含有价值的蛋白质动力学信息,但与Bragg信号相比,漫射信号更难从背景中分离出来,并且漫射信号的可重复性尚未得到很好的理解。我们提出了一个系统的研究从三种不同的蛋白质形式的异氰化物水合酶扩散散射的再现性。在两两比较中,从不同突变体中获得的重复弥散数据集和数据集相似(Pearson相关系数≥0.8)。数据的处理方式受到先前发布的方法的启发,使用具有模块化设计的定制软件,使我们能够对各种数据处理选择进行分析,以确定如何获得最高质量的数据,并使用无偏的对称性和可重复性措施进行评估。然后使用类液体运动(LLM)模型使用漫射数据来表征原子迁移率。这种表征能够区分不同的各向异性原子位移参数(ADP)模型,这些模型由不同的各向异性缩放选择产生,与Bragg数据相当一致。我们的研究结果强调了数据可重复性作为无模型的漫射数据质量度量的重要性,说明了LLM漫射分析在替代ADP模型中进行选择的能力,并为成功的漫射散射实验的设计提供了见解。
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Reproducibility of protein x-ray diffuse scattering and potential utility for modeling atomic displacement parameters.

Protein structure and dynamics can be probed using x-ray crystallography. Whereas the Bragg peaks are only sensitive to the average unit-cell electron density, the signal between the Bragg peaks-diffuse scattering-is sensitive to spatial correlations in electron-density variations. Although diffuse scattering contains valuable information about protein dynamics, the diffuse signal is more difficult to isolate from the background compared to the Bragg signal, and the reproducibility of diffuse signal is not yet well understood. We present a systematic study of the reproducibility of diffuse scattering from isocyanide hydratase in three different protein forms. Both replicate diffuse datasets and datasets obtained from different mutants were similar in pairwise comparisons (Pearson correlation coefficient ≥0.8). The data were processed in a manner inspired by previously published methods using custom software with modular design, enabling us to perform an analysis of various data processing choices to determine how to obtain the highest quality data as assessed using unbiased measures of symmetry and reproducibility. The diffuse data were then used to characterize atomic mobility using a liquid-like motions (LLM) model. This characterization was able to discriminate between distinct anisotropic atomic displacement parameter (ADP) models arising from different anisotropic scaling choices that agreed comparably with the Bragg data. Our results emphasize the importance of data reproducibility as a model-free measure of diffuse data quality, illustrate the ability of LLM analysis of diffuse scattering to select among alternative ADP models, and offer insights into the design of successful diffuse scattering experiments.

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来源期刊
Structural Dynamics-Us
Structural Dynamics-Us CHEMISTRY, PHYSICALPHYSICS, ATOMIC, MOLECU-PHYSICS, ATOMIC, MOLECULAR & CHEMICAL
CiteScore
5.50
自引率
3.60%
发文量
24
审稿时长
16 weeks
期刊介绍: Structural Dynamics focuses on the recent developments in experimental and theoretical methods and techniques that allow a visualization of the electronic and geometric structural changes in real time of chemical, biological, and condensed-matter systems. The community of scientists and engineers working on structural dynamics in such diverse systems often use similar instrumentation and methods. The journal welcomes articles dealing with fundamental problems of electronic and structural dynamics that are tackled by new methods, such as: Time-resolved X-ray and electron diffraction and scattering, Coherent diffractive imaging, Time-resolved X-ray spectroscopies (absorption, emission, resonant inelastic scattering, etc.), Time-resolved electron energy loss spectroscopy (EELS) and electron microscopy, Time-resolved photoelectron spectroscopies (UPS, XPS, ARPES, etc.), Multidimensional spectroscopies in the infrared, the visible and the ultraviolet, Nonlinear spectroscopies in the VUV, the soft and the hard X-ray domains, Theory and computational methods and algorithms for the analysis and description of structuraldynamics and their associated experimental signals. These new methods are enabled by new instrumentation, such as: X-ray free electron lasers, which provide flux, coherence, and time resolution, New sources of ultrashort electron pulses, New sources of ultrashort vacuum ultraviolet (VUV) to hard X-ray pulses, such as high-harmonic generation (HHG) sources or plasma-based sources, New sources of ultrashort infrared and terahertz (THz) radiation, New detectors for X-rays and electrons, New sample handling and delivery schemes, New computational capabilities.
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