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A noise and artifact suppression using resampling (NASR) method to facilitate de novo protein structure determination

机译:使用重采样(NASR)方法抑制噪声和伪影,以方便从头确定蛋白质结构

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摘要

Background The search of heavy atoms is crucial to the de novo determination of protein structures. Typically, the difference Patterson map is calculated as a first step to solve substructure. However, the pseudo-peaks and noises inherent in such maps arising from the high symmetry and large size of protein structures accompanied with the data collection errors inevitably pose a challenge in accurate real space-based substructure determination. Purpose In order to mitigate such pseudo-peaks and noises and further improve signal-to-noise ratio (SNR) of the difference Patterson map, the noise and artifact suppression using resampling (NASR) method originally proposed in nuclear magnetic resonance is introduced into protein crystallography in this work to optimize the difference Patterson map. Methods The NASR method makes use of the statistical learning theory, which in this work repeatedly samples a fixed portion of diffraction data (sub-dataset) randomly followed by a statistical analysis of the multiple calculated difference Patterson maps to discard pseudo-peaks and noises. Its feasibility is based on the fact that the true vector peaks of the heavy atoms keep static in the multiple random sub-datasets, whereas the pseudo-peaks and noises fluctuate remarkably. And the key of this method lies in the design of a weighting function to distinguish true vector peaks from pseudo-peaks and noises, as well as a proper selection of the parameters associated with the function. Results The introduced NASR method is both numerically and experimentally demonstrated to be feasible in suppressing spurious peaks and non-correlative noises intrinsic to the difference Patterson maps. As a result, the SNR of the difference Patterson maps can be enhanced to some extent to facilitate real space-based substructure determination. Conclusion It is therefore anticipated that the proposed method may provide a meaningful insight into how to denoise the difference Patterson maps, which in turn assists in locating heavy atoms and further facilitates de novo protein structure determination.
机译:背景技术重原子的搜索对于从头确定蛋白质结构至关重要。通常,差异帕特森图被计算为求解子结构的第一步。但是,这种图谱固有的伪峰和噪声是由于蛋白质结构的高对称性和大尺寸以及数据收集错误引起的,不可避免地给精确的基于实空的子结构确定提出了挑战。目的为了减轻此类伪峰值和噪声并进一步提高差异帕特森图的信噪比(SNR),将最初在核磁共振中提出的使用重采样的噪声和伪影抑制(NASR)方法引入蛋白质中晶体学这项工作可以优化帕特森图谱的差异。方法NASR方法利用统计学习理论,该理论在这项工作中随机地对固定部分的衍射数据(子数据集)进行重复采样,然后对多个计算得出的差异Patterson映射进行统计分析,以丢弃伪峰值和噪声。它的可行性是基于这样一个事实,即重原子的真实矢量峰在多个随机子数据集中保持静态,而伪峰和噪声则明显波动。该方法的关键在于加权函数的设计,以区分伪峰值和噪声中的真实矢量峰,以及与该函数关联的参数的正确选择。结果在数值上和实验上都证明了引入的NASR方法在抑制差异Patterson映射固有的虚假峰值和非相关噪声方面是可行的。结果,差异Patterson图的SNR可以在某种程度上被增强以促进基于空间的子结构的确定。结论因此,可以预期的是,提出的方法可以为如何对差异Patterson图进行降噪提供有意义的见解,从而有助于定位重原子并进一步促进从头蛋白质结构的确定。

著录项

  • 来源
    《Radiation Detection Technology and Methods 》 |2019年第3期| 48.1-48.9| 共9页
  • 作者单位

    Beijing Synchrotron Radiation Facility, Institute of High Energy Physics, Chinese Academy of Sciences, Beijing 100049, People's Republic of China,University of Chinese Academy of Sciences, Beijing 100049, People's Republic of China;

    Beijing Synchrotron Radiation Facility, Institute of High Energy Physics, Chinese Academy of Sciences, Beijing 100049, People's Republic of China;

    Beijing Synchrotron Radiation Facility, Institute of High Energy Physics, Chinese Academy of Sciences, Beijing 100049, People's Republic of China,University of Chinese Academy of Sciences, Beijing 100049, People's Republic of China;

    Beijing Synchrotron Radiation Facility, Institute of High Energy Physics, Chinese Academy of Sciences, Beijing 100049, People's Republic of China;

    Beijing Synchrotron Radiation Facility, Institute of High Energy Physics, Chinese Academy of Sciences, Beijing 100049, People's Republic of China,University of Chinese Academy of Sciences, Beijing 100049, People's Republic of China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    NASR; Heavy atom; Difference Patterson map; Protein crystallography;

    机译:NASR;重原子;区别帕特森地图;蛋白质晶体学;

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