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Single Particle 3D Reconstruction for 2D Crystal Images of Membrane Proteins

机译:膜蛋白二维晶体图像的单粒子三维重建

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摘要

In cases where ultra-flat cryo-preparations of well-ordered two-dimensional (2D) crystals are available, electron crystallography is a powerful method for the determination of the high-resolution structures of membrane and soluble proteins. However, crystal unbending and Fourier-filtering methods in electron crystallography three-dimensional (3D) image processing are generally limited in their performance for 2D crystals that are badly ordered or non-flat. Here we present a single particle image processing approach, which is implemented as an extension of the 2D crystallographic pipeline realized in the 2dx software package, for the determination of high-resolution 3D structures of membrane proteins. The algorithm presented, addresses the low single-to-noise ratio (SNR) of 2D crystal images by exploiting neighborhood correlation between adjacent proteins in the 2D crystal. Compared with conventional single particle processing for randomly oriented particles, the computational costs are greatly reduced due to the crystal-induced limited search space, which allows a much finer search space compared to classical single particle processing. To reduce the considerable computational costs, our software features a hybrid parallelization scheme for multi-CPU clusters and computer with high-end graphic processing units (GPUs). We successfully apply the new refinement method to the structure of the potassium channel MloK1. The calculated 3D reconstruction shows more structural details and contains less noise than the map obtained by conventional Fourier-filtering based processing of the same 2D crystal images.
机译:如果有序二维(2D)晶体的超扁平冷冻制备物可用,电子晶体学是测定膜和可溶性蛋白质高分辨率结构的有力方法。但是,在电子晶体学三维(3D)图像处理中,晶体的无弯曲和傅里叶滤波方法通常对于2D晶体的性能受到限制,这些2D晶体排列有序或不平坦。在这里,我们提出了一种单颗粒图像处理方法,该方法被实现为2dx软件包中实现的2D晶体学流水线的扩展,用于确定膜蛋白的高分辨率3D结构。提出的算法通过利用2D晶体中相邻蛋白质之间的邻域相关性,解决了2D晶体图像的低单噪声比(SNR)。与传统的随机取向颗粒的单颗粒处理相比,由于晶体诱导的有限搜索空间,计算成本大大降低,与传统的单颗粒处理相比,它可以提供更精细的搜索空间。为了减少可观的计算成本,我们的软件采用了混合并行化方案,适用于多CPU集群和带有高端图形处理单元(GPU)的计算机。我们成功地将新的提炼方法应用于钾通道MloK1的结构。与通过相同2D晶体图像的常规基于傅立叶滤波的处理所获得的图相比,所计算的3D重建显示出更多的结构细节,并且包含的​​噪声更少。

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