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MICAlign: a sequence-to-structure alignment tool integrating multiple sources of information in conditional random fields

机译:MICAlign:一种序列到结构的比对工具,在条件随机字段中集成了多种信息源

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SUMMARY: Sequence-to-structure alignment in template-based protein structure modeling for remote homologs remains a difficult problem even following the correct recognition of folds. Here we present MICAlign, a sequence-to-structure alignment tool that incorporates multiple sources of information from local structural contexts of template, sequence profiles, predicted secondary structures, solvent accessibilities, potential-like terms (including residue-residue contacts and solvent exposures) and pre-aligned structures and sequences. These features, together with a position-specific gap scheme, were integrated into conditional random fields through which the optimal parameters were automatically learned. MICAlign showed improved alignment accuracy over several other state-of-the-art alignment tools based on comparisons by using independent datasets. AVAILABILITY: Freely available at (http://www.bioinfo.tsinghua.edu.cn/~xiaxf/micalign) for both web server and source code.
机译:简介:即使在正确识别折叠后,远程同源物的基于模板的蛋白质结构建模中的序列与结构比对仍然是一个难题。在这里,我们介绍了MICAlign,这是一种序列到结构的比对工具,该工具整合了模板本地结构上下文,序列概况,预测的二级结构,溶剂可及性,类似电位的术语(包括残留物-残留物接触和溶剂暴露)的多种信息来源以及预先对齐的结构和序列。这些功能与特定位置的间隙方案一起被集成到条件随机字段中,通过该条件随机字段可自动学习最佳参数。通过使用独立数据集进行的比较,MICAlign显示出比其他几种最新的对准工具更高的对准精度。可用性:可从(http://www.bioinfo.tsinghua.edu.cn/~xiaxf/micalign)免费获得Web服务器和源代码。

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