Does phylogeny explain bias in quantitative DNA metabarcoding?

Mingxin Liu, C. Burridge, L. Clarke, S. Baker, G. Jordan
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引用次数: 3

Abstract

Estimating species biomass or abundance from the number of high-throughput sequencing (HTS) reads is an aspirational goal for DNA metabarcoding, yet studies have found varied correlations. Performance varies depending on the gene marker and taxonomic group and, in part, may be related to primer-template mismatches, which are likely to exhibit phylogenetic signals. In this study, we compared commonly used fragments of two gene markers for beetles, the mitochondrial cytochrome c oxidase subunit I (COI) and 16S ribosomal RNA (16S), which have similar lengths, but different propensity for primer-template mismatches. We tested whether primer-template mismatches influence the relationship between species biomass and HTS read abundance and whether the effect of mismatches was explained by phylogeny. A significant correlation between species biomass and HTS read abundance existed for 16S, but not for COI, which had more primer-template mismatches. Models incorporating the effects of mismatch type or number improved the estimation of species biomass from HTS read abundance for COI and strong phylogenetic signals were identified. Researchers seeking to quantify biomass from metabarcoding studies should consider the effect of primer-template mismatches for the taxonomic group of interest and, for beetles, 16S appears a good candidate. Phylogenetic correction can also improve biomass estimation when using gene markers with higher primer mismatching.
Does系统发育解释定量DNA元条形码的偏差?
根据高通量测序(HTS)读数估计物种生物量或丰度是DNA代谢编码的一个理想目标,但研究发现了不同的相关性。性能因基因标记和分类群而异,部分可能与引物-模板失配有关,后者可能表现出系统发育信号。在这项研究中,我们比较了甲虫常用的两种基因标记片段,线粒体细胞色素c氧化酶亚基I(COI)和16S核糖体RNA(16S),它们具有相似的长度,但引物模板错配的倾向不同。我们测试了引物模板错配是否影响物种生物量和HTS读数丰度之间的关系,以及错配的影响是否可以用系统发育来解释。16S的物种生物量和HTS读数丰度之间存在显著相关性,而COI则不存在,因为COI具有更多的引物模板错配。结合错配类型或数量影响的模型改进了从COI的HTS读取丰度对物种生物量的估计,并鉴定了强的系统发育信号。试图从代谢编码研究中量化生物量的研究人员应该考虑引物模板错配对感兴趣的分类群的影响,对于甲虫来说,16S似乎是一个很好的候选者。当使用具有较高引物错配的基因标记时,系统发育校正也可以提高生物量估计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Metabarcoding and Metagenomics
Metabarcoding and Metagenomics Agricultural and Biological Sciences-Animal Science and Zoology
CiteScore
5.40
自引率
0.00%
发文量
25
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