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Normal Mode-Based Fitting of Atomic Structure into Electron Density Maps: Application to Sarcoplasmic Reticulum Ca-ATPase

机译:基于正态模式的原子结构到电子密度图中的拟合:在肌浆网Ca-ATPase中的应用

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摘要

A method for the flexible docking of high-resolution atomic structures into lower resolution densities derived from electron microscopy is presented. The atomic structure is deformed by an iterative process using combinations of normal modes to obtain the best fit of the electron microscopical density. The quality of the computed structures has been evaluated by several techniques borrowed from crystallography. Two atomic structures of the SERCA1 Ca-ATPase corresponding to different conformations were used as a starting point to fit the electron density corresponding to a different conformation. The fitted models have been compared to published models obtained by rigid domain docking, and their relation to the known crystallographic structures are explored by normal mode analysis. We find that only a few number of modes contribute significantly to the transition. The associated motions involve almost exclusively rotation and translation of the cytoplasmic domains as well as displacement of cytoplasmic loops. We suggest that the movements of the cytoplasmic domains are driven by the conformational change that occurs between nonphosphorylated and phosphorylated intermediate, the latter being mimicked by the presence of vanadate at the phosphorylation site in the electron microscopy structure.
机译:提出了一种方法,用于将高分辨率的原子结构灵活地对接到电子显微镜得到的较低分辨率的密度中。通过使用正常模式的组合通过迭代过程使原子结构变形,以获得电子显微镜密度的最佳拟合。计算结构的质量已通过从晶体学借用的几种技术进行了评估。对应于不同构象的SERCA1 Ca-ATPase的两个原子结构被用作起点来拟合对应于不同构象的电子密度。已将拟合模型与通过刚性域对接获得的已发布模型进行了比较,并通过正态模式分析探索了它们与已知晶体结构的关系。我们发现只有少数几种模式对过渡有很大贡献。相关的运动几乎全部涉及细胞质结构域的旋转和翻译以及细胞质环的移位。我们建议,胞质域的运动是由非磷酸化和磷酸化的中间体之间发生的构象变化驱动的,后者被电子显微镜结构中磷酸化位点处钒酸盐的存在所模仿。

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