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内部硫 SAD 相位法:数据质量和分辨率截止值影响的案例研究

In-house sulfur SAD phasing: a case study of the effects of data quality and resolution cutoffs.

作者信息

Sarma Ganapathy N, Karplus P Andrew

机构信息

Department of Biochemistry and Biophysics, 2011 ALS, Oregon State University, Corvallis, OR 97331, USA.

出版信息

Acta Crystallogr D Biol Crystallogr. 2006 Jul;62(Pt 7):707-16. doi: 10.1107/S0907444906014946. Epub 2006 Jun 20.

Abstract

Single-wavelength anomalous diffraction (SAD) utilizing the weak signal of inherently present S atoms can be successfully used to solve macromolecular structures, although this is mostly performed with data from a synchrotron rather than a laboratory source. Using high redundancy, sufficiently accurate anomalous data may now often be collected in the laboratory using Cu Kalpha X-ray radiation. Systematic analyses of a laboratory-derived data set illuminate the effects of data quality, redundancy and resolution cutoffs on the ability to locate the S atoms and phase the structure of Ptr ToxA, a 13.2 kDa toxin secreted by the fungus Pyrenophora tritici-repentis. Three sulfurs contributed to the successful phasing of the structure and were located using the program SHELXD. It is observed that data quality improves with increasing redundancy, but after a certain point becomes worse owing to crystal decay, so that there is an optimal amount of data to include for the sulfur substructure solution. Further, the success rate in locating S atoms is dramatically improved at lower resolutions and in a manner similar to data quality, there exists an optimal resolution at which the likelihood of solving the substructure is maximized. Based on these observations, a strategy for SAD data collection and substructure solution is suggested.

摘要

利用天然存在的硫原子的微弱信号进行的单波长反常衍射(SAD)可成功用于解析大分子结构,尽管这大多是利用来自同步加速器而非实验室光源的数据来完成的。如今,使用铜Kα X射线辐射,常常可以在实验室中收集具有高冗余度、足够精确的反常数据。对一组源自实验室的数据进行的系统分析,揭示了数据质量、冗余度和分辨率截止值对定位硫原子以及对小麦根腐病菌分泌的13.2 kDa毒素Ptr ToxA的结构进行相位分析能力的影响。三个硫原子有助于成功解析该结构的相位,并使用SHELXD程序进行了定位。可以观察到,数据质量随着冗余度的增加而提高,但在达到某一点后,由于晶体衰减而变差,因此对于硫亚结构解析而言,存在一个最佳的数据包含量。此外,在较低分辨率下,定位硫原子的成功率会显著提高,并且与数据质量类似,存在一个最佳分辨率,在该分辨率下解析亚结构的可能性最大。基于这些观察结果,提出了一种SAD数据收集和亚结构解析策略。

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