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Markov random fields reveal an N-terminal double beta-propeller motif as part of a bacterial hybrid two-component sensor system

机译:马尔可夫随机场揭示了N末端双β螺旋桨基序作为细菌混合两成分传感器系统的一部分

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摘要

The recent explosion in newly sequenced bacterial genomes is outpacing the capacity of researchers to try to assign functional annotation to all the new proteins. Hence, computational methods that can help predict structural motifs provide increasingly important clues in helping to determine how these proteins might function. We introduce a Markov Random Field approach tailored for recognizing proteins that fold into mainly β-structural motifs, and apply it to build recognizers for the β-propeller shapes. As an application, we identify a potential class of hybrid two-component sensor proteins, that we predict contain a double-propeller domain.
机译:最近对新测序的细菌基因组的爆炸式增长超过了研究人员尝试为所有新蛋白质分配功能注释的能力。因此,可以帮助预测结构基序的计算方法在帮助确定这些蛋白质如何发挥作用方面提供了越来越重要的线索。我们介绍了一种马尔可夫随机场方法,该方法专门用于识别折叠成主要为β结构基序的蛋白质,并将其应用于构建针对β螺旋桨形状的识别器。作为一种应用,我们确定了潜在的一类杂化双组分传感器蛋白,我们预测它们包含一个双螺旋结构域。

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