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Assessing computational tools for the discovery of small RNA genes in bacteria.

机译:评估用于发现细菌中小RNA基因的计算工具。

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摘要

Over the past decade, a number of biocomputational tools have been developed to predict small RNA (sRNA) genes in bacterial genomes. In this study, several of the leading biocomputational tools, which use different methodologies, were investigated. The performance of the tools, both individually and in combination, was evaluated on ten sets of benchmark data, including data from a novel RNA-seq experiment conducted in this study. The results of this study offer insight into the utility as well as the limitations of the leading biocomputational tools for sRNA identification and provide practical guidance for users of the tools.
机译:在过去的十年中,已经开发出许多生物计算工具来预测细菌基因组中的小RNA(sRNA)基因。在这项研究中,研究了几种使用不同方法的领先生物计算工具。根据十组基准数据评估了工具的性能,无论是单独使用还是组合使用,都包括本研究中进行的新型RNA-seq实验的数据。这项研究的结果提供了对sRNA识别的领先生物计算工具的实用性和局限性的见解,并为该工具的用户提供了实用指南。

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