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首页> 外文期刊>Bioinformatics >Masking residues using context-specific evolutionary conservation significantly improves short linear motif discovery
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Masking residues using context-specific evolutionary conservation significantly improves short linear motif discovery

机译:使用上下文特定的进化保守性掩盖残基可显着改善短线性基序发现

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MOTIVATION: Short linear motifs (SLiMs) are important mediators of protein-protein interactions. Their short and degenerate nature presents a challenge for computational discovery. We sought to improve SLiM discovery by incorporating evolutionary information, since SLiMs are more conserved than surrounding residues. RESULTS: We have developed a new method that assesses the evolutionary signal of a residue in its sequence and structural context. Under-conserved residues are masked out prior to SLiM discovery, allowing incorporation into the existing statistical model employed by SLiMFinder. The method shows considerable robustness in terms of both the conservation score used for individual residues and the size of the sequence neighbourhood. Optimal parameters significantly improve return of known functional motifs from benchmarking data, raising the return of significant validated SLiMs from typical human interaction datasets from 20% to 60%, while retaining the high level of stringency needed for application to real biological data. The success of this regime indicates that it could be of general benefit to computational annotation and prediction of protein function at the sequence level. AVAILABILITY: All data and tools in this article are available at http://bioware.ucd.ie/~slimdisc/slimfinder/conmasking/.
机译:动机:短线性基序(SLiMs)是蛋白质-蛋白质相互作用的重要介体。它们短而简并的性质对计算发现提出了挑战。我们试图通过纳入进化信息来改善SLiM的发现,因为SLiM比周围的残基更保守。结果:我们开发了一种新的方法,以评估残基的序列和结构上下文中的进化信号。发现SLiM之前,掩盖了保守度较低的残基,从而可以将其并入SLiMFinder使用的现有统计模型中。该方法在用于单个残基的保守评分和序列邻域的大小方面都显示出相当强的鲁棒性。最佳参数可以显着改善基准数据的已知功能基元的回报,将典型人机交互数据集中经过验证的有效SLiM的回报率从20%提高至60%,同时保留了应用于实际生物数据所需的严格程度。该方案的成功表明,它对序列水平上蛋白质功能的计算注释和预测可能具有普遍的益处。可用性:本文中的所有数据和工具都可以从http://bioware.ucd.ie/~slimdisc/slimfinder/conmasking/获得。

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