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统计校正动力学电子散射提高了蛋白质纳米晶体的精修,包括配位金属的电荷精修。

Statistically correcting dynamical electron scattering improves the refinement of protein nanocrystals, including charge refinement of coordinated metals.

机构信息

Department of Biology and Chemistry, Paul Scherrer Institute, 5232 Villigen, Switzerland.

Université Grenoble Alpes, CEA, CNRS, IBS, 71 Avenue des Martyrs, 38000 Grenoble, France.

出版信息

Acta Crystallogr D Struct Biol. 2021 Jan 1;77(Pt 1):75-85. doi: 10.1107/S2059798320014540.

Abstract

Electron diffraction allows protein structure determination when only nanosized crystals are available. Nevertheless, multiple elastic (or dynamical) scattering, which is prominent in electron diffraction, is a concern. Current methods for modeling dynamical scattering by multi-slice or Bloch wave approaches are not suitable for protein crystals because they are not designed to cope with large molecules. Here, dynamical scattering of nanocrystals of insulin, thermolysin and thaumatin was limited by collecting data from thin crystals. To accurately measure the weak diffraction signal from the few unit cells in the thin crystals, a low-noise hybrid pixel Timepix electron-counting detector was used. The remaining dynamical component was further reduced in refinement using a likelihood-based correction, which was introduced previously for analyzing electron diffraction data of small-molecule nanocrystals and was adapted here for protein crystals. The procedure is shown to notably improve the structural refinement, in one case allowing the location of solvent molecules. It also allowed refinement of the charge states of bound metal atoms, an important element in protein function, through B-factor analysis of the metal atoms and their ligands. These results clearly increase the value of macromolecular electron crystallography as a complementary structural biology technique.

摘要

当只有纳米大小的晶体可用时,电子衍射可用于确定蛋白质结构。然而,电子衍射中突出的多次弹性(或动态)散射是一个关注点。目前用于多晶切片或布洛赫波方法模拟动态散射的方法不适合蛋白质晶体,因为它们不是为处理大分子而设计的。在这里,通过收集薄晶体的数据来限制胰岛素、耐热酶和天花粉的纳米晶体的动态散射。为了准确测量薄晶体中少数晶胞的微弱衍射信号,使用了低噪声混合像素 Timepix 电子计数探测器。使用基于似然的校正进一步减少了剩余的动态分量,该校正先前用于分析小分子纳米晶体的电子衍射数据,并在此处适应于蛋白质晶体。该程序被证明可以显著改善结构精修,在一种情况下允许定位溶剂分子。它还通过对金属原子及其配体的 B 因子分析,允许对结合金属原子的电荷状态进行精修,这是蛋白质功能的一个重要元素。这些结果显然增加了大分子电子晶体学作为一种补充结构生物学技术的价值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8808/7787111/c39c29c6a96c/d-77-00075-fig1.jpg

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