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首页> 外文期刊>Nucleic Acids Research >ESPRIT: estimating species richness using large collections of 16S rRNA pyrosequences
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ESPRIT: estimating species richness using large collections of 16S rRNA pyrosequences

机译:ESPRIT:使用大量16S rRNA焦磷酸序列估算物种丰富度

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Recent metagenomics studies of environmental samples suggested that microbial communities are much more diverse than previously reported, and deep sequencing will significantly increase the estimate of total species diversity. Massively parallel pyrosequencing technology enables ultra-deep sequencing of complex microbial populations rapidly and inexpensively. However, computational methods for analyzing large collections of 16S ribosomal sequences are limited. We proposed a new algorithm, referred toas ESPRIT, which addresses several computational issues with prior methods. We developed two versions of ESPRIT, one for personal computers (PCs) and one for computer clusters (CCs). The PC version is used for small- and medium-scale data sets and can process several tens of thousands of sequences within a few minutes, while the CC version is for large-scale problems and is able to analyze several hundreds of thousands of reads within one day. Large-scale experiments are presented that clearly demonstrate the effectiveness of the newly proposed algorithm. The source code and user guide are freely available at http://www.biotech.ufl.edu/people/sun/esprit.html.
机译:最近对环境样品进行的宏基因组学研究表明,微生物群落比以前报道的要多样化得多,深度测序将大大增加对总物种多样性的估计。大规模平行的焦磷酸测序技术可快速,廉价地对复杂微生物种群进行超深测序。但是,用于分析大量16S核糖体序列集合的计算方法受到限制。我们提出了一种称为ESPRIT的新算法,该算法解决了现有方法的一些计算问题。我们开发了两种版本的ESPRIT,一种用于个人计算机(PC),另一种用于计算机集群(CC)。 PC版本用于中小型数据集,可在几分钟内处理数以万计的序列,而CC版本则用于大规模问题,并能够分析其中的数十万次读取一天。提出的大规模实验清楚地证明了新提出的算法的有效性。可从http://www.biotech.ufl.edu/people/sun/esprit.html免费获得源代码和用户指南。

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