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Can I solve my structure by SAD phasing? Planning an experiment scaling data and evaluating the useful anomalous correlation and anomalous signal

机译:我可以通过SAD分步来解决我的结构吗?计划实验缩放数据并评估有用的异常相关性和异常信号

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摘要

A key challenge in the SAD phasing method is solving a structure when the anomalous signal-to-noise ratio is low. Here, algorithms and tools for evaluating and optimizing the useful anomalous correlation and the anomalous signal in a SAD experiment are described. A simple theoretical framework [Terwilliger et al. (2016), Acta Cryst. D>72, 346–358] is used to develop methods for planning a SAD experiment, scaling SAD data sets and estimating the useful anomalous correlation and anomalous signal in a SAD data set. The phenix.plan_sad_experiment tool uses a database of solved and unsolved SAD data sets and the expected characteristics of a SAD data set to estimate the probability that the anomalous substructure will be found in the SAD experiment and the expected map quality that would be obtained if the substructure were found. The phenix.scale_and_merge tool scales unmerged SAD data from one or more crystals using local scaling and optimizes the anomalous signal by identifying the systematic differences among data sets, and the phenix.anomalous_signal tool estimates the useful anomalous correlation and anomalous signal after collecting SAD data and estimates the probability that the data set can be solved and the likely figure of merit of phasing.
机译:SAD调相方法的关键挑战是解决异常信噪比低时的结构。在此,描述了用于评估和优化SAD实验中有用的异常相关性和异常信号的算法和工具。一个简单的理论框架[Terwilliger等。 (2016),Acta Cryst。 D > 72 ,346–358]用于开发用于计划SAD实验,缩放SAD数据集并估算SAD数据集中有用的异常相关性和异常信号的方法。 phenix.plan_sad_experiment工具使用已解决和未解决的SAD数据集的数据库以及SAD数据集的预期特征,来估计在SAD实验中发现异常子结构的可能性以及如果获得了预期的地图质量,发现了子结构。 phenix.scale_and_merge工具使用局部缩放功能缩放来自一个或多个晶体的未合并SAD数据的比例,并通过识别数据集之间的系统差异来优化异常信号,并且phenix.anomalous_signal工具在收集SAD数据并估算出有用的异常相关性和异常信号后,进行估算。估计可以解决数据集的可能性以及可能的定相价值。

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