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SIFTER-T: A scalable and optimized framework for the SIFTER phylogenomic method of probabilistic protein domain annotation

机译:SIFTER-T:用于概率蛋白质域注释的SIFTER系统生物学方法的可扩展且优化的框架

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摘要

Statistical Inference of Function Through Evolutionary Relationships (SIFTER) is a powerful computational platform for probabilistic protein domain annotation. Nevertheless, SIFTER is not widely used, likely due to usability and scalability issues. Here we present SIFTER-T (SIFTER Throughput-optimized), a substantial improvement over SIFTER's original proof-of-principle implementation. SIFTER-T is optimized for better performance, allowing it to be used at the genome-wide scale. Compared to SIFTER 2.0, SIFTER-T achieved an 87-fold performance improvement using published test data sets for the known annotations recovering module and a 72.3% speed increase for the gene tree generation module in quad-core machines, as well as a major decrease in memory usage during the realignment phase. Memory optimization allowed an expanded set of proteins to be handled by SIFTER's probabilistic method. The improvement in performance and automation that we achieved allowed us to build a web server to bring the power of Bayesian phylogenomic inference to the genomics community. SIFTER-T and its online interface are freely available under GNU license at http://labpib.fmrp.usp.br/methods/SIFTER-t/ and https://github.com/dcasbioinfo/SIFTER-t.
机译:通过进化关系进行功能的统计推断(SIFTER)是用于概率蛋白质域注释的强大计算平台。但是,由于可用性和可伸缩性问题,SIFTER并未得到广泛使用。在这里,我们介绍了SIFTER-T(SIFTER吞吐量优化),它是对SIFTER最初的原理证明实施的实质性改进。 SIFTER-T经过优化,具有更好的性能,可以在全基因组范围内使用。与SIFTER 2.0相比,SIFTER-T使用已知的注释恢复模块的已发布测试数据集将性能提高了87倍,四核计算机中的基因树生成模块的速度提高了72.3%,并且大大降低了重新调整阶段的内存使用情况。内存优化使扩展的蛋白质组可以通过SIFTER的概率方法处理。我们所实现的性能和自动化方面的改进使我们能够构建Web服务器,以将贝叶斯系统生物学推论的功能带入基因组学界。 SIFTER-T及其在线界面可在GNU许可下免费获得,网址为http://labpib.fmrp.usp.br/methods/SIFTER-t/和https://github.com/dcasbioinfo/SIFTER-t。

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