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Improved taxonomic assignment of rumen bacterial 16S rRNA sequences using a revised SILVA taxonomic framework

机译:使用修订的SILVA分类框架改进瘤胃细菌16S rRNA序列的分类分配

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摘要

The taxonomy and associated nomenclature of many taxa of rumen bacteria are poorly defined within databases of 16S rRNA genes. This lack of resolution results in inadequate definition of microbial community structures, with large parts of the community designated as incertae sedis, unclassified, or uncultured within families, orders, or even classes. We have begun resolving these poorly-defined groups of rumen bacteria, based on our desire to name these for use in microbial community profiling. We used the previously-reported global rumen census (GRC) dataset consisting of >4.5 million partial bacterial 16S rRNA gene sequences amplified from 684 rumen samples and representing a wide range of animal hosts and diets. Representative sequences from the 8,985 largest operational units (groups of sequence sharing >97% sequence similarity, and covering 97.8% of all sequences in the GRC dataset) were used to identify 241 pre-defined clusters (mainly at genus or family level) of abundant rumen bacteria in the ARB SILVA 119 framework. A total of 99 of these clusters (containing 63.8% of all GRC sequences) had no unique or had inadequate taxonomic identifiers, and each was given a unique nomenclature. We assessed this improved framework by comparing taxonomic assignments of bacterial 16S rRNA gene sequence data in the GRC dataset with those made using the original SILVA 119 framework, and three other frameworks. The two SILVA frameworks performed best at assigning sequences to genus-level taxa. The SILVA 119 framework allowed 55.4% of the sequence data to be assigned to 751 uniquely identifiable genus-level groups. The improved framework increased this to 87.1% of all sequences being assigned to one of 871 uniquely identifiable genus-level groups. The new designations were included in the SILVA 123 release () and will be perpetuated in future releases.
机译:在16S rRNA基因数据库中,瘤胃细菌的许多分类群的分类学和相关命名法定义不充分。缺乏解决方案导致对微生物群落结构的定义不充分,大部分群落被指定为不安全的,没有分类的,或在家庭,订单甚至阶级中没有文化的群落。基于我们希望将它们命名以用于微生物群落分析的方法,我们已经开始解决这些瘤胃细菌定义不明确的问题。我们使用了先前报道的全球瘤胃普查(GRC)数据集,该数据集由684个瘤胃样品中扩增的> 450万部分细菌16S rRNA基因序列组成,代表了广泛的动物宿主和饮食。来自8,985个最大操作单元(序列相似性> 97%的组,覆盖GRC数据集中所有序列的97.8%)中的代表性序列用于鉴定241个丰富的预定义簇(主要在属或家族水平)瘤胃细菌在ARB SILVA 119框架中。这些群集中的总共99个(包含所有GRC序列的63.8%)没有唯一的或没有足够的分类学标识符,并且每个都具有唯一的命名法。我们通过比较GRC数据集中细菌16S rRNA基因序列数据的分类分配与使用原始SILVA 119框架和其他三个框架进行的分类分配来评估此改进的框架。这两个SILVA框架在将序列分配给属类分类群方面表现最佳。 SILVA 119框架允许将55.4%的序列数据分配给751个唯一可识别的属水平组。改进的框架将其增加到所有序列的87.1%,分配给871个唯一可识别的属水平组之一。新名称包含在SILVA 123版本()中,并将在以后的版本中永久保留。

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