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Speeding up subcellular localization by extracting informative regions of protein sequences for profile alignment

机译:通过提取用于序列比对的蛋白质序列的信息区域来加快亚细胞定位

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The functions of proteins are closely related to their subcellular locations. In the post-proteomics era, the amount of gene and protein data grows exponentially, which necessitates the prediction of subcellular localization by computational means. This paper proposes mitigating the computation burden of alignment-based approaches to subcellular localization prediction by using the information provided by the N-terminal sorting signals. To this end, a cascaded fusion of cleavage site prediction and profile alignment is proposed. Specifically, the informative segments of protein sequences are identified by a cleavage site predictor. Then, only the informative segments are applied to a homology-based classifier for predicting the subcellular locations. Experimental results on a newly constructed dataset show that the method can make use of the best property of both approaches and can attain an accuracy higher than using the full-length sequences. Moreover, the method can reduce the computation time by 20 folds. We advocate that the method will be important for biologists to conduct large-scale protein annotation or for bioinformaticians to perform preliminary investigations on new algorithms that involve pairwise alignments.
机译:蛋白质的功能与其亚细胞位置密切相关。在后蛋白质组学时代,基因和蛋白质数据的数量呈指数增长,这需要通过计算手段来预测亚细胞定位。本文提出通过利用N端排序信号提供的信息来减轻基于比对方法进行亚细胞定位预测的计算负担。为此,提出了切割位点预测和轮廓比对的级联融合。具体而言,蛋白序列的信息片段由切割位点预测子鉴定。然后,仅将信息片段应用于基于同源性的分类器,以预测亚细胞位置。在一个新构建的数据集上的实验结果表明,该方法可以利用两种方法的最佳性能,并且可以获得比使用全长序列更高的精度。而且,该方法可以将计算时间减少20倍。我们主张该方法对于生物学家进行大规模蛋白质注释或生物信息学家对涉及成对比对的新算法进行初步研究非常重要。

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