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首页> 外文期刊>Acta crystallographica. Section D, Structural biology. >Progress in low-resolution ab initio phasing with CrowdPhase
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Progress in low-resolution ab initio phasing with CrowdPhase

机译:在低分辨率的从头开始逐步进步CrowdPhase

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摘要

Ab initio phasing by direct computational methods in low-resolution X-ray crystallography is a long-standing challenge. A common approach is to consider it as two subproblems: sampling of phase space and identification of the correct solution. While the former is amenable to a myriad of search algorithms, devising a reliable target function for the latter problem remains an open question. Here, recent developments in CrowdPhase, a collaborative online game powered by a genetic algorithm that evolves an initial population of individuals with random genetic make-up (i.e. random phases) each expressing a phenotype in the form of an electron-density map, are presented. Success relies on the ability of human players to visually evaluate the quality of these maps and, following a Darwinian survival-of-the-fittest concept, direct the search towards optimal solutions. While an initial study demonstrated the feasibility of the approach, some important crystallographic issues were overlooked for the sake of simplicity. To address these, the new CrowdPhase includes consideration of space-group symmetry, a method for handling missing amplitudes, the use of a map correlation coefficient as a quality metric and a solvent-flattening step. Performances of this installment are discussed for two low-resolution test cases based on bona fide diffraction data.
机译:从头开始逐步通过直接计算方法在低分辨率的x射线晶体学长期的挑战。认为这是两个子问题:抽样的阶段空间和确定正确的解决方案。而前者是经得起无数搜索算法,设计一个可靠的目标函数,后者仍然是一个悬而未决的问题的问题。CrowdPhase,协作网络游戏的的遗传算法初始演化人口的随机遗传化妆品(即随机阶段)每一个表达表型在电子密度图的形式,提出了。人类玩家视觉评价的质量这些地图和达尔文场适者生存的概念,直接的对最优解的搜索。初步研究证明的可行性方法,晶体的一些重要的事情为了简单起见时被忽略。解决这些新的CrowdPhase包括空间群对称性的考虑方法处理丢失的振幅,地图的使用相关系数作为指标和质量solvent-flattening一步。部分讨论了两个低分辨率测试用例基于善意的衍射数据。

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