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Detecting asymmetry in the presence of symmetry with maximum likelihood three-dimensional reconstructions of viruses from electron microscope images

机译:在具有对称性的情况下检测不对称性,利用电子显微镜图像对病毒进行最大似然三维重建

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Various modes of transmission electron microscopy can provide unique structural information on nanometre-scale biological machines such as viruses and ribosomes. A maximum-likelihood statistical reconstruction algorithm using information from two such modalities, single-particle cryo-electron microscopy and computed electron tomography, is described for the problem where the machine is nearly symmetrical, but the localised regions of asymmetry are important for the functioning of the machine. The algorithm is demonstrated on experimental bacteriophage Lambda procapsid data. Key features of the algorithm are the use of probability density functions (pdfs) derived from normalised correlation rather than Gaussian pdfs and the solution of a constrained classification problem in which 11 out of 12 sites of asymmetry belong to one class while the 12th site belongs to a second class.
机译:透射电子显微镜的各种模式可以在纳米级生物机器(例如病毒和核糖体)上提供独特的结构信息。针对机器近似对称的问题,描述了一种最大似然统计重建算法,该算法使用来自两种模态的信息(单粒子低温电子显微镜和计算机电子断层扫描),来解决机器几乎对称的问题,但是不对称的局部区域对于传感器的功能很重要。机器。该算法在实验性噬菌体λ衣壳数据上得到证明。该算法的主要特征是使用归一化相关性而不是高斯pdfs产生的概率密度函数(pdfs)以及约束分类问题的解决方案,其中12个不对称位点中的11个属于一类,而第12个位点属于第二类。

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