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Structure and Dynamics of Type III Secretion Effector Protein ExoU As determined by SDSL-EPR Spectroscopy in Conjunction with De Novo Protein Folding

机译:通过SDSL-EPR光谱与De Novo蛋白质折叠相结合确定的III型分泌效应蛋白ExoU的结构和动力学

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ExoU is a 74 kDa cytotoxin that undergoes substantial conformational changes as part of its function, that is, it has multiple thermodynamically stable conformations that interchange depending on its environment. Such flexible proteins pose unique challenges to structural biology: (1) not only is it often difficult to determine structures by X-ray crystallography for all biologically relevant conformations because of the flat energy landscape (2) but also experimental conditions can easily perturb the biologically relevant conformation. The first challenge can be overcome by applying orthogonal structural biology techniques that are capable of observing alternative, biologically relevant conformations. The second challenge can be addressed by determining the structure in the same biological state with two independent techniques under different experimental conditions. If both techniques converge to the same structural model, the confidence that an unperturbed biologically relevant conformation is observed increases. To this end, we determine the structure of the C-terminal domain of the effector protein, ExoU, from data obtained by electron paramagnetic resonance spectroscopy in conjunction with site-directed spin labeling and in silico de novo structure determination. Our protocol encompasses a multimodule approach, consisting of low-resolution topology sampling, clustering, and high-resolution refinement. The resulting model was compared with an ExoU model in complex with its chaperone SpcU obtained previously by X-ray crystallography. The two models converged to a minimal RMSD100 of 3.2 ?, providing evidence that the unbound structure of ExoU matches the fold observed in complex with SpcU.
机译:ExoU是一种74 kDa的细胞毒素,作为其功能的一部分,会发生构象变化,即它具有多个热力学稳定的构象,这些构象会根据其环境而互换。这种灵活的蛋白质对结构生物学提出了独特的挑战:(1)由于能量水平平坦,不仅通常很难通过X射线晶体学确定所有生物学相关构象的结构(2),而且实验条件也很容易扰乱生物学相关构象。通过应用正交结构生物学技术可以克服第一个挑战,该技术能够观察到替代的生物学相关构象。第二个挑战可以通过使用两种独立技术在不同实验条件下确定相同生物状态下的结构来解决。如果两种技术都收敛于相同的结构模型,则观察到不受干扰的生物学相关构象的置信度将提高。为此,我们从电子顺磁共振光谱结合定点自旋标记和计算机模拟结构确定中确定数据,确定效应子蛋白ExoU的C端结构域的结构。我们的协议包含多模块方法,包括低分辨率拓扑采样,聚类和高分辨率细化。将得到的模型与ExoU模型进行比较,该模型与先前通过X射线晶体学获得的分子伴侣SpcU形成复合物。两种模型的最小RMSD100收敛为3.2Ω,这提供了ExoU的未结合结构与在SpcU中观察到的折叠数匹配的证据。

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