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Environmental metabarcoding reveals heterogeneous drivers of microbial eukaryote diversity in contrasting estuarine ecosystems

机译:环境元条形码揭示了河口生态系统中微生物真核生物多样性的异质驱动力

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摘要

Assessing how natural environmental drivers affect biodiversity underpins our understanding of the relationships between complex biotic and ecological factors in natural ecosystems. Of all ecosystems, anthropogenically important estuaries represent a 'melting pot' of environmental stressors, typified by extreme salinity variations and associated biological complexity. Although existing models attempt to predict macroorganismal diversity over estuarine salinity gradients, attempts to model microbial biodiversity are limited for eukaryotes. Although diatoms commonly feature as bioindicator species, additional microbial eukaryotes represent a huge resource for assessing ecosystem health. Of these, meiofaunal communities may represent the optimal compromise between functional diversity that can be assessed using morphology and phenotype-environment interactions as compared with smaller life fractions. Here, using 454 Roche sequencing of the 18S nSSU barcode we investigate which of the local natural drivers are most strongly associated with microbial metazoan and sampled protist diversity across the full salinity gradient of the estuarine ecosystem. In order to investigate potential variation at the ecosystem scale, we compare two geographically proximate estuaries (Thames and Mersey, UK) with contrasting histories of anthropogenic stress. The data show that although community turnover is likely to be predictable, taxa are likely to respond to different environmental drivers and, in particular, hydrodynamics, salinity range and granulometry, according to varied life-history characteristics. At the ecosystem level, communities exhibited patterns of estuary-specific similarity within different salinity range habitats, highlighting the environmental sequencing biomonitoring potential of meiofauna, dispersal effects or both.
机译:评估自然环境驱动因素如何影响生物多样性,有助于我们理解自然生态系统中复杂的生物和生态因素之间的关系。在所有生态系统中,人为重要的河口代表着环境压力源的“熔炉”,以极端的盐度变化和相关的生物复杂性为代表。尽管现有的模型试图在河口盐度梯度上预测宏观生物多样性,但对于真核生物而言,对微生物生物多样性建模的尝试仍然有限。尽管硅藻通常作为生物指示剂,但其他微生物真核生物代表了评估生态系统健康的巨大资源。在这些物种中,与较小的生命部分相比,代名词群落可能代表功能多样性之间的最佳折衷,可以使用形态学和表型-环境相互作用来评估。在这里,我们使用18S nSSU条码的454罗氏测序,研究了在河口生态系统的整个盐度梯度中,哪些本地自然驱动力与微生物后生动物和采样的原生生物多样性最密切相关。为了调查生态系统范围内的潜在变化,我们比较了两个地理上最接近的河口(Thames和Mersey,英国)和不同的人为压力历史。数据表明,尽管社区的营业额可能是可预测的,但根据不同的生活史特征,分类单元可能会响应不同的环境驱动因素,尤其是流体动力学,盐度范围和粒度分析。在生态系统层面,社区在不同盐度范围的生境中表现出特定河口相似性的模式,突出了淡水动植物的环境排序生物监测潜力,扩散效应或两者兼而有之。

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