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基于傅里叶切片匹配的核糖体大小颗粒的单粒子X射线自由电子激光三维重建:达到亚纳米分辨率的要求。

Single-particle XFEL 3D reconstruction of ribosome-size particles based on Fourier slice matching: requirements to reach subnanometer resolution.

作者信息

Nakano Miki, Miyashita Osamu, Jonic Slavica, Tokuhisa Atsushi, Tama Florence

机构信息

Advanced Institute of Computational Science, RIKEN, 6-7-1 Minatojima-minami-machi, Chuo-ku, Kobe, Hyogo 650-0047, Japan.

IMPMC, Sorbonne Universités - CNRS UMR 7590, UPMC Université Paris 6, MNHN, IRD UMR 206, Paris 75005, France.

出版信息

J Synchrotron Radiat. 2018 Jul 1;25(Pt 4):1010-1021. doi: 10.1107/S1600577518005568. Epub 2018 May 30.

Abstract

Three-dimensional (3D) structures of biomolecules provide insight into their functions. Using X-ray free-electron laser (XFEL) scattering experiments, it was possible to observe biomolecules that are difficult to crystallize, under conditions that are similar to their natural environment. However, resolving 3D structure from XFEL data is not without its challenges. For example, strong beam intensity is required to obtain sufficient diffraction signal and the beam incidence angles to the molecule need to be estimated for diffraction patterns with significant noise. Therefore, it is important to quantitatively assess how the experimental conditions such as the amount of data and their quality affect the expected resolution of the resulting 3D models. In this study, as an example, the restoration of 3D structure of ribosome from two-dimensional diffraction patterns created by simulation is shown. Tests are performed using the diffraction patterns simulated for different beam intensities and using different numbers of these patterns. Guidelines for selecting parameters for slice-matching 3D reconstruction procedures are established. Also, the minimum requirements for XFEL experimental conditions to obtain diffraction patterns for reconstructing molecular structures to a high-resolution of a few nanometers are discussed.

摘要

生物分子的三维(3D)结构有助于深入了解其功能。利用X射线自由电子激光(XFEL)散射实验,能够在类似于其自然环境的条件下观察难以结晶的生物分子。然而,从XFEL数据解析3D结构并非没有挑战。例如,需要强光束强度来获得足够的衍射信号,并且对于具有大量噪声的衍射图案,需要估计光束与分子的入射角。因此,定量评估诸如数据量及其质量等实验条件如何影响所得3D模型的预期分辨率非常重要。在本研究中,作为示例,展示了从模拟产生的二维衍射图案恢复核糖体的3D结构。使用针对不同光束强度模拟的衍射图案并使用不同数量的这些图案进行测试。建立了用于切片匹配3D重建程序的参数选择指南。此外,还讨论了获得用于将分子结构重建至几纳米高分辨率的衍射图案所需的XFEL实验条件的最低要求。

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