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基于拓扑约束的从头相位法:自动确定空间群和晶胞中的分子数。

Ab initio phasing based on topological restraints: automated determination of the space group and the number of molecules in the unit cell.

作者信息

Urzhumtseva Ludmila, Lunina Natalia, Fokine Andrei, Samama Jean Pierre, Lunin Vladimir Y, Urzhumtsev Alexandre

机构信息

INIST, 2 all. Parc de Brabois, 54505 Vandoeuvre-lès-Nancy, France.

出版信息

Acta Crystallogr D Biol Crystallogr. 2004 Sep;60(Pt 9):1519-26. doi: 10.1107/S0907444904014969. Epub 2004 Aug 26.

Abstract

The connectivity-based phasing method has been demonstrated to be capable of finding molecular packing and envelopes even for difficult cases of structure determination, as well as of identifying, in favorable cases, secondary-structure elements of protein molecules in the crystal. This method uses a single set of structure factor magnitudes and general topological features of a crystallographic image of the macromolecule under study. This information is expressed through a number of parameters. Most of these parameters are easy to estimate, and the results of phasing are practically independent of these parameters when they are chosen within reasonable limits. By contrast, the correct choice for such parameters as the expected number of connected regions in the unit cell is sometimes ambiguous. To study these dependencies, numerous tests were performed with simulated data, experimental data and mixed data sets, where several reflections missed in the experiment were completed by computed data. This paper demonstrates that the procedure is able to control this choice automatically and helps in difficult cases to identify the correct number of molecules in the asymmetric unit. In addition, the procedure behaves abnormally if the space group is defined incorrectly and therefore may distinguish between the rotation and screw axes even when high-resolution data are not available.

摘要

基于连通性的相位确定方法已被证明,即使对于结构测定困难的情况,也能够找到分子堆积和分子包络,并且在有利的情况下,能够识别晶体中蛋白质分子的二级结构元件。该方法使用一组结构因子振幅以及所研究大分子晶体学图像的一般拓扑特征。这些信息通过一些参数来表示。大多数这些参数易于估计,并且当在合理范围内选择时,相位确定的结果实际上与这些参数无关。相比之下,对于诸如晶胞中预期连通区域数量等参数的正确选择有时并不明确。为了研究这些相关性,使用模拟数据、实验数据和混合数据集进行了大量测试,其中实验中缺失的一些反射由计算数据补充。本文表明该程序能够自动控制这种选择,并有助于在困难情况下识别不对称单元中正确的分子数量。此外,如果空间群定义错误,该程序会表现异常,因此即使没有高分辨率数据,也可能区分旋转轴和螺旋轴。

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