Soares Alexei S, Caspar Donald L D, Weckert Edgar, Héroux Annie, Hölzer Kerstin, Schroer Klaus, Zellner Johannes, Schneider Dieter, Nolan William, Sweet Robert M
Biology Department, Brookhaven National Laboratory, Upton, NY 11973, USA.
Acta Crystallogr D Biol Crystallogr. 2003 Oct;59(Pt 10):1716-24. doi: 10.1107/s0907444903015403. Epub 2003 Sep 19.
Triplet phases recorded from insulin crystals were used to measure the improvement of phases during model refinement and to quantify the contribution made by each step in the refinement. Conventional amplitude data were recorded to 1.5 A resolution from rhombohedral pig insulin crystals using 1.54 A Cu Kalpha radiation. An initial atomic model and starting phases were obtained from a published structure and the atomic model was refined against the amplitude data using CNS. The refined phases were compared with 800 triplet phases that were measured from similar crystals using a three-beam interference technique and 1.1 A wavelength synchrotron radiation. The solvent region was improved further using a novel density-modification procedure. Calculated triplet phases were obtained from the model after each step in the refinement and were compared with the recorded triplet phases. The average difference between the recorded triplet phases and the calculated triplet phases was used as an unbiased measure of the correctness of the model at each stage in the refinement. The average individual phase error was estimated from discrepancies from triplet phases after each refinement step. Conventional atomic refinement of an approximate starting model reduced the average individual phase error from 21.6 to 14.7 degrees. Improvement of the solvent region, including the difference-map flattening procedure, reduced the individual phase error by a further 2.6 degrees. Modeling the discrete disorder of four amino acids accounted for an additional 0.5 degrees improvement and the final individual phase error was 11.6 degrees.
从胰岛素晶体记录的三重态相位用于测量模型精修过程中相位的改善情况,并量化精修中每个步骤所做的贡献。使用1.54 Å Cu Kα辐射从菱形猪胰岛素晶体记录常规振幅数据至1.5 Å分辨率。初始原子模型和起始相位取自已发表的结构,并使用CNS针对振幅数据对原子模型进行精修。将精修后的相位与使用三束干涉技术和1.1 Å波长同步辐射从类似晶体测量的800个三重态相位进行比较。使用一种新颖的密度修正程序进一步改善溶剂区域。在精修的每个步骤之后,从模型中获得计算的三重态相位,并与记录的三重态相位进行比较。记录的三重态相位与计算的三重态相位之间的平均差异用作精修各阶段模型正确性的无偏度量。根据每次精修步骤后与三重态相位的差异估计平均单个相位误差。对近似起始模型进行常规原子精修将平均单个相位误差从21.6度降低至14.7度。包括差分图平坦化程序在内的溶剂区域的改善使单个相位误差进一步降低2.6度。对四个氨基酸的离散无序进行建模又带来了0.5度的改善,最终单个相位误差为11.6度。