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Improving protein fold recognition and template-based modeling by employing probabilistic-based matching between predicted one-dimensional structural properties of query and corresponding native properties of templates

机译:通过在查询的预测的一维结构特性与模板的相应本机特性之间采用基于概率的匹配改善蛋白质折叠识别和基于模板的建模

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摘要

>Motivation: In recent years, development of a single-method fold-recognition server lags behind consensus and multiple template techniques. However, a good consensus prediction relies on the accuracy of individual methods. This article reports our efforts to further improve a single-method fold recognition technique called SPARKS by changing the alignment scoring function and incorporating the SPINE-X techniques that make improved prediction of secondary structure, backbone torsion angle and solvent accessible surface area.>Results: The new method called SPARKS-X was tested with the SALIGN benchmark for alignment accuracy, Lindahl and SCOP benchmarks for fold recognition, and CASP 9 blind test for structure prediction. The method is compared to several state-of-the-art techniques such as HHPRED and BoostThreader. Results show that SPARKS-X is one of the best single-method fold recognition techniques. We further note that incorporating multiple templates and refinement in model building will likely further improve SPARKS-X.>Availability: The method is available as a SPARKS-X server at >Contact:
机译:>动机:近年来,单方法折叠识别服务器的开发落后于共识和多种模板技术。但是,良好的共识预测取决于各个方法的准确性。本文报告了我们通过更改对齐方式评分功能并结合SPINE-X技术进一步改进称为SPARKS的单方法折叠识别技术的努力,该技术可改进二级结构,主链扭转角和溶剂可及表面积的预测。>结果:这种新方法称为SPARKS-X,已通过SALIGN基准测试以进行对准精度,以Lindahl和SCOP基准进行褶皱识别,并通过CASP 9盲法进行结构预测。将该方法与HHPRED和BoostThreader等几种最新技术进行了比较。结果表明,SPARKS-X是最好的单方法折叠识别技术之一。我们进一步注意到,在模型构建中合并多个模板并进行改进将可能进一步改善SPARKS-X。>可用性::该方法可作为SPARKS-X服务器在>联系人:

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