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SwiftOrtho: A fast, memory-efficient, multiple genome orthology classifier

机译:SwiftOrtho:快速,高效存储,多基因组正交分类器

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Background Gene homology type classification is required for many types of genome analyses, including comparative genomics, phylogenetics, and protein function annotation. Consequently, a large variety of tools have been developed to perform homology classification across genomes of different species. However, when applied to large genomic data sets, these tools require high memory and CPU usage, typically available only in computational clusters. Findings Here we present a new graph-based orthology analysis tool, SwiftOrtho, which is optimized for speed and memory usage when applied to large-scale data. SwiftOrtho uses long k -mers to speed up homology search, while using a reduced amino acid alphabet and spaced seeds to compensate for the loss of sensitivity due to long k -mers. In addition, it uses an affinity propagation algorithm to reduce the memory usage when clustering large-scale orthology relationships into orthologous groups. In our tests, SwiftOrtho was the only tool that completed orthology analysis of proteins from 1,760 bacterial genomes on a computer with only 4 GB RAM. Using various standard orthology data sets, we also show that SwiftOrtho has a high accuracy. Conclusions SwiftOrtho enables the accurate comparative genomic analyses of thousands of genomes using low-memory computers.
机译:背景技术许多类型的基因组分析都需要基因同源性类型分类,包括比较基因组学,系统发育学和蛋白质功能注释。因此,已经开发了多种工具来对不同物种的基因组进行同源性分类。但是,当将这些工具应用于大型基因组数据集时,它们需要很高的内存和CPU使用率,通常仅在计算群集中可用。结果在这里,我们介绍了一个新的基于图形的正交分析工具SwiftOrtho,该工具在应用于大规模数据时针对速度和内存使用进行了优化。 SwiftOrtho使用长k聚体来加快同源性搜索,同时使用减少的氨基酸字母和间隔的种子来补偿由于长k聚体所引起的灵敏度损失。另外,当将大规模正交关系聚为直系同源组时,它使用亲和力传播算法来减少内存使用。在我们的测试中,SwiftOrtho是唯一在只有4 GB RAM的计算机上完成对来自1,760个细菌基因组的蛋白质进行正交分析的工具。使用各种标准的正畸学数据集,我们还证明了SwiftOrtho具有很高的准确性。结论SwiftOrtho使用低内存计算机可以对数千个基因组进行准确的比较基因组分析。

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