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精确的大分子晶体学精修:将线性缩放半经验量子力学程序DivCon纳入PHENIX精修软件包。

Accurate macromolecular crystallographic refinement: incorporation of the linear scaling, semiempirical quantum-mechanics program DivCon into the PHENIX refinement package.

作者信息

Borbulevych Oleg Y, Plumley Joshua A, Martin Roger I, Merz Kenneth M, Westerhoff Lance M

机构信息

QuantumBio Inc., 2790 West College Avenue, State College, PA 16801, USA.

Quantum Theory Project, University of Florida, Gainesville, Florida USA.

出版信息

Acta Crystallogr D Biol Crystallogr. 2014 May;70(Pt 5):1233-47. doi: 10.1107/S1399004714002260. Epub 2014 Apr 26.

Abstract

Macromolecular crystallographic refinement relies on sometimes dubious stereochemical restraints and rudimentary energy functionals to ensure the correct geometry of the model of the macromolecule and any covalently bound ligand(s). The ligand stereochemical restraint file (CIF) requires a priori understanding of the ligand geometry within the active site, and creation of the CIF is often an error-prone process owing to the great variety of potential ligand chemistry and structure. Stereochemical restraints have been replaced with more robust functionals through the integration of the linear-scaling, semiempirical quantum-mechanics (SE-QM) program DivCon with the PHENIX X-ray refinement engine. The PHENIX/DivCon package has been thoroughly validated on a population of 50 protein-ligand Protein Data Bank (PDB) structures with a range of resolutions and chemistry. The PDB structures used for the validation were originally refined utilizing various refinement packages and were published within the past five years. PHENIX/DivCon does not utilize CIF(s), link restraints and other parameters for refinement and hence it does not make as many a priori assumptions about the model. Across the entire population, the method results in reasonable ligand geometries and low ligand strains, even when the original refinement exhibited difficulties, indicating that PHENIX/DivCon is applicable to both single-structure and high-throughput crystallography.

摘要

大分子晶体学精修依赖于有时存疑的立体化学限制和基本的能量泛函,以确保大分子模型及任何共价结合配体的几何结构正确。配体立体化学限制文件(CIF)需要先验了解活性位点内的配体几何结构,而且由于潜在配体化学和结构种类繁多,创建CIF往往是一个容易出错的过程。通过将线性缩放半经验量子力学(SE-QM)程序DivCon与PHENIX X射线精修引擎集成,立体化学限制已被更强大的泛函所取代。PHENIX/DivCon软件包已在50个具有一系列分辨率和化学结构的蛋白质-配体蛋白质数据库(PDB)结构上进行了全面验证。用于验证的PDB结构最初是使用各种精修软件包进行精修的,并在过去五年内发表。PHENIX/DivCon不使用CIF、连接限制和其他精修参数,因此它对模型的先验假设较少。在整个数据集上,即使原始精修存在困难,该方法也能产生合理的配体几何结构和低配体应变,这表明PHENIX/DivCon适用于单结构和高通量晶体学。

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