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Assessment of Microbial Communities by Graph Partitioning in a Study of Soil Fungi in Two Alpine Meadows

机译:图划分在两个高寒草甸土壤真菌研究中的微生物群落评估

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摘要

Understanding how microbial community structure and diversity respond to environmental conditions is one of the main challenges in environmental microbiology. However, there is often confusion between determining the phylogenetic structure of microbial communities and assessing the distribution and diversity of molecular operational taxonomic units (MOTUs) in these communities. This has led to the use of sequence analysis tools such as multiple alignments and hierarchical clustering that are not adapted to the analysis of large and diverse data sets and not always justified for characterization of MOTUs. Here, we developed an approach combining a pairwise alignment algorithm and graph partitioning by using MCL (Markov clustering) in order to generate discrete groups for nuclear large-subunit rRNA gene and internal transcript spacer 1 sequence data sets obtained from a yearly monitoring study of two spatially close but ecologically contrasting alpine soils (namely, early and late snowmelt locations). We compared MCL with a classical single-linkage method (Ccomps) and showed that MCL reduced bias such as the chaining effect. Using MCL, we characterized fungal communities in early and late snowmelt locations. We found contrasting distributions of MOTUs in the two soils, suggesting that there is a high level of habitat filtering in the assembly of alpine soil fungal communities. However, few MOTUs were specific to one location.
机译:理解微生物群落结构和多样性如何响应环境条件是环境微生物学的主要挑战之一。但是,在确定微生物群落的系统发育结构与评估这些群落中分子操作分类单位(MOTU)的分布和多样性之间常常会混淆。这导致了序列分析工具的使用,例如多重比对和层次聚类,这些工具不适合分析大型和多样化的数据集,并且不总是能够表征MOTU。在这里,我们开发了一种通过使用MCL(马尔可夫聚类)将成对比对算法和图分区相结合的方法,以便为核大亚基rRNA基因和内部成绩单间隔区1序列数据集生成离散组,该数据集是从两个年度监测研究获得的在空间上接近但在生态方面形成对比的高山土壤(即融雪的早期和晚期)。我们将MCL与经典的单链接方法(Ccomps)进行了比较,结果表明MCL减少了诸如连锁效应之类的偏差。使用MCL,我们对融雪早期和晚期的真菌群落进行了特征分析。我们发现两种土壤中MOTU的分布相反,这表明在高山土壤真菌群落的组装中存在高水平的生境过滤。但是,很少有MOTU专门针对一个位置。

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