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Structure of CPV17 polyhedrin determined by the improved analysis of serial femtosecond crystallographic data

机译:通过改进系列飞秒晶体学数据确定CPV17多面体的结构

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摘要

The X-ray free-electron laser (XFEL) allows the analysis of small weakly diffracting protein crystals, but has required very many crystals to obtain good data. Here we use an XFEL to determine the room temperature atomic structure for the smallest cytoplasmic polyhedrosis virus polyhedra yet characterized, which we failed to solve at a synchrotron. These protein microcrystals, roughly a micron across, accrue within infected cells. We use a new physical model for XFEL diffraction, which better estimates the experimental signal, delivering a high-resolution XFEL structure (1.75 angstrom), using fewer crystals than previously required for this resolution. The crystal lattice and protein core are conserved compared with a polyhedrin with less than 10% sequence identity. We explain how the conserved biological phenotype, the crystal lattice, is maintained in the face of extreme environmental challenge and massive evolutionary divergence. Our improved methods should open up more challenging biological samples to XFEL analysis.
机译:X射线自由电子激光(XFEL)允许分析小的弱衍射蛋白质晶体,但需要很多晶体才能获得良好的数据。在这里,我们使用XFEL来确定尚未表征的最小的胞质多角体病毒多角体的室温原子结构,而在同步加速器中我们无法解决该结构。这些蛋白质微晶大约在一个微米范围内,聚集在受感染的细胞内。我们对XFEL衍射使用了新的物理模型,该模型可以更好地估计实验信号,并提供高分辨率的XFEL结构(1.75埃),并且使用的晶体比以前所需的更少。与具有少于10%序列同一性的多面体蛋白相比,晶格和蛋白核是保守的。我们解释了在极端的环境挑战和巨大的进化分歧面前如何保持保守的生物表型,即晶格。我们改进的方法应该为XFEL分析打开更具挑战性的生物样品。

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