Predicting X-ray diffuse scattering from translation-libration-screw structural ensembles.

Andrew H Van Benschoten, Pavel V Afonine, Thomas C Terwilliger, Michael E Wall, Colin J Jackson, Nicholas K Sauter, Paul D Adams, Alexandre Urzhumtsev, James S Fraser
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引用次数: 11

Abstract

Identifying the intramolecular motions of proteins and nucleic acids is a major challenge in macromolecular X-ray crystallography. Because Bragg diffraction describes the average positional distribution of crystalline atoms with imperfect precision, the resulting electron density can be compatible with multiple models of motion. Diffuse X-ray scattering can reduce this degeneracy by reporting on correlated atomic displacements. Although recent technological advances are increasing the potential to accurately measure diffuse scattering, computational modeling and validation tools are still needed to quantify the agreement between experimental data and different parameterizations of crystalline disorder. A new tool, phenix.diffuse, addresses this need by employing Guinier's equation to calculate diffuse scattering from Protein Data Bank (PDB)-formatted structural ensembles. As an example case, phenix.diffuse is applied to translation-libration-screw (TLS) refinement, which models rigid-body displacement for segments of the macromolecule. To enable the calculation of diffuse scattering from TLS-refined structures, phenix.tls_as_xyz builds multi-model PDB files that sample the underlying T, L and S tensors. In the glycerophosphodiesterase GpdQ, alternative TLS-group partitioning and different motional correlations between groups yield markedly dissimilar diffuse scattering maps with distinct implications for molecular mechanism and allostery. These methods demonstrate how, in principle, X-ray diffuse scattering could extend macromolecular structural refinement, validation and analysis.

Abstract Image

Abstract Image

Abstract Image

从平移-振动-螺旋结构系综预测x射线漫射散射。
识别蛋白质和核酸的分子内运动是大分子x射线晶体学的主要挑战。由于布拉格衍射描述晶体原子的平均位置分布精度不完美,因此所得的电子密度可以与多种运动模型兼容。漫射x射线散射可以通过报告相关的原子位移来减少这种简并。尽管最近的技术进步增加了精确测量扩散散射的潜力,但仍然需要计算建模和验证工具来量化实验数据与晶体无序的不同参数化之间的一致性。一个新工具,凤凰。通过使用Guinier方程来计算蛋白质数据库(PDB)格式结构集合的扩散散射,解决了这一需求。举个例子,凤凰。diffuse应用于平移-振动-螺旋(TLS)精化,它模拟了大分子片段的刚体位移。为了能够计算来自tls精细结构的漫射散射,tls_as_xyz构建对底层T、L和S张量进行采样的多模型PDB文件。在甘油磷酸二酯酶GpdQ中,不同的tls组分配和组间不同的运动相关性产生了明显不同的漫射散射图,这对分子机制和变构有明显的影响。这些方法表明,原则上,x射线漫射散射可以扩展大分子结构的细化,验证和分析。
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