元群落理论与元条形码揭示沙滩小动物群落的环境、空间和生物驱动因素。

IF 4.5 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Maximilian Pichler, Simon Creer, Alejandro Martínez, Diego Fontaneto, Willem Renema, Jan-Niklas Macher
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引用次数: 0

摘要

了解形成群落的过程是生态学的一个关键焦点。海洋底栖小动物是生活在沉积物环境中的微小无脊椎动物,在生态系统功能中发挥着重要作用,但由于缺乏群落数据,在元群落研究中被忽视。在这项研究中,我们量化了环境过滤、空间过程和生物关联在构建小动物群落中的相对贡献。我们将广义差异模型(GDM)和联合物种分布模型(JSDM)应用于一个广泛的元条形码数据集,该数据集包括从荷兰和德国北海沿岸650多公里的沙滩上收集的550个样本。我们的研究结果表明,生物关联,其次是环境因素,特别是与低潮线的距离和沉积物粒度,是小型动物群落更替的主要驱动因素,突出了尖锐的环境梯度的影响。表明扩散限制的空间因子对群落组成没有重大影响,支持微生物具有强扩散能力的假设。JSDM结果表明,虽然物种分选是群落组合的关键驱动因素,但环境因素在环境不同(“极端”)的地点最为重要,而生物关联在环境相似和不同的栖息地都显著地塑造了群落组合,强调了将物种相互作用纳入群落组合模型的必要性。通过深入了解小动物群落结构的驱动因素,我们的研究强调了环境梯度和生物关联在塑造生物多样性模式中的重要性,并强调了类似方法的潜力,以增强对其他生态系统的理解,这些生态系统具有小型,高度多样化,但研究不足的分类群。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Metacommunity Theory and Metabarcoding Reveal the Environmental, Spatial and Biotic Drivers of Meiofaunal Communities in Sandy Beaches

Metacommunity Theory and Metabarcoding Reveal the Environmental, Spatial and Biotic Drivers of Meiofaunal Communities in Sandy Beaches

Understanding the processes that shape community assembly is a critical focus of ecology. Marine benthic meiofauna, microscopic invertebrates inhabiting sediment environments, play important roles in ecosystem functioning but have been largely overlooked in metacommunity studies due to the lack of community data. In this study, we quantify the relative contributions of environmental filtering, spatial processes, and biotic associations in structuring meiofaunal communities. We applied Generalised Dissimilarity Modelling (GDM) and Joint Species Distribution Modelling (JSDM) to an extensive metabarcoding dataset comprising 550 samples collected from sandy beaches along over 650 km of the Dutch and German North Sea coast. Our findings reveal that biotic associations, followed by environmental factors, particularly the distance from the low tide line and sediment grain size, are primary drivers of meiofauna community turnover, highlighting the influence of sharp environmental gradients. Spatial factors indicating dispersal limitations have no major impact on community composition, supporting the assumption that microscopic organisms have strong dispersal capabilities. JSDM results demonstrate that while species sorting is a key driver of community assembly, environmental factors are most important in environmentally distinct (‘extreme’) sites, whereas biotic associations significantly shape community assembly in both environmentally similar and dissimilar habitats, emphasising the need to incorporate species interactions into models of community assembly. By providing insights into the drivers of meiofaunal community structure, our study highlights the importance of environmental gradients and biotic associations in shaping biodiversity patterns and underscores the potential for similar approaches to enhance understanding of other ecosystems with small, highly diverse, but understudied taxa.

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来源期刊
Molecular Ecology
Molecular Ecology 生物-进化生物学
CiteScore
8.40
自引率
10.20%
发文量
472
审稿时长
1 months
期刊介绍: Molecular Ecology publishes papers that utilize molecular genetic techniques to address consequential questions in ecology, evolution, behaviour and conservation. Studies may employ neutral markers for inference about ecological and evolutionary processes or examine ecologically important genes and their products directly. We discourage papers that are primarily descriptive and are relevant only to the taxon being studied. Papers reporting on molecular marker development, molecular diagnostics, barcoding, or DNA taxonomy, or technical methods should be re-directed to our sister journal, Molecular Ecology Resources. Likewise, papers with a strongly applied focus should be submitted to Evolutionary Applications. Research areas of interest to Molecular Ecology include: * population structure and phylogeography * reproductive strategies * relatedness and kin selection * sex allocation * population genetic theory * analytical methods development * conservation genetics * speciation genetics * microbial biodiversity * evolutionary dynamics of QTLs * ecological interactions * molecular adaptation and environmental genomics * impact of genetically modified organisms
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