Low-pass spectral analysis of time-resolved serial femtosecond crystallography data.

IF 2.3 2区 物理与天体物理 Q3 CHEMISTRY, PHYSICAL
Cecilia M Casadei, Ahmad Hosseinizadeh, Spencer Bliven, Tobias Weinert, Jörg Standfuss, Russell Fung, Gebhard F X Schertler, Robin Santra
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Abstract

Low-pass spectral analysis (LPSA) is a recently developed dynamics retrieval algorithm showing excellent retrieval properties when applied to model data affected by extreme incompleteness and stochastic weighting. In this work, we apply LPSA to an experimental time-resolved serial femtosecond crystallography (TR-SFX) dataset from the membrane protein bacteriorhodopsin (bR) and analyze its parametric sensitivity. While most dynamical modes are contaminated by nonphysical high-frequency features, we identify two dominant modes, which are little affected by spurious frequencies. The dynamics retrieved using these modes shows an isomerization signal compatible with previous findings. We employ synthetic data with increasing timing uncertainty, increasing incompleteness level, pixel-dependent incompleteness, and photon counting errors to investigate the root cause of the high-frequency contamination of our TR-SFX modes. By testing a range of methods, we show that timing errors comparable to the dynamical periods to be retrieved produce a smearing of dynamical features, hampering dynamics retrieval, but with no introduction of spurious components in the solution, when convergence criteria are met. Using model data, we are able to attribute the high-frequency contamination of low-order dynamical modes to the high levels of noise present in the data. Finally, we propose a method to handle missing observations that produces a substantial dynamics retrieval improvement from synthetic data with a significant static component. Reprocessing of the bR TR-SFX data using the improved method yields dynamical movies with strong isomerization signals compatible with previous findings.

Abstract Image

Abstract Image

Abstract Image

时间分辨连续飞秒晶体学数据的低通光谱分析。
低通谱分析(LPSA)是近年来发展起来的一种动态检索算法,在处理受极端不完备性和随机加权影响的模型数据时表现出优异的检索性能。在这项工作中,我们将LPSA应用于来自膜蛋白细菌视紫红质(bR)的实验时间分辨序列飞秒晶体学(TR-SFX)数据集,并分析其参数灵敏度。虽然大多数动态模式受到非物理高频特征的污染,但我们确定了两种主导模式,它们受杂散频率的影响很小。使用这些模式检索的动力学显示了与先前发现一致的异构化信号。我们使用时间不确定性增加、不完整性水平增加、像素依赖性不完整性和光子计数错误的合成数据来调查TR-SFX模式高频污染的根本原因。通过测试一系列方法,我们表明,当满足收敛准则时,与要检索的动态周期相当的定时误差会产生动态特征的模糊,阻碍动态检索,但不会在解决方案中引入虚假分量。使用模型数据,我们能够将低阶动态模式的高频污染归因于数据中存在的高水平噪声。最后,我们提出了一种处理缺失观测的方法,该方法可以从具有重要静态成分的合成数据中产生实质性的动态检索改进。使用改进的方法对bR TR-SFX数据进行再处理,得到具有强异构化信号的动态电影,与先前的发现相一致。
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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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