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首页> 外文期刊>Estuarine Coastal and Shelf Science >Application of Bayesian structural equation modeling for examining phytoplankton dynamics in the Neuse River Estuary (North Carolina, USA)
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Application of Bayesian structural equation modeling for examining phytoplankton dynamics in the Neuse River Estuary (North Carolina, USA)

机译:贝叶斯结构方程模型在Neuse河口(美国北卡罗莱纳州)的浮游植物动力学研究中的应用

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We introduce a Bayesian structural equation modeling framework to explore the spatiotemporal phytoplankton community patterns in the Neuse River Estuary (study period 1995—2001). The initial hypothesized model considered the influence of the physical environment (flow, salinity, and light availability), nitrogen (dissolved oxidized inorganic nitrogen, and total dissolved inorganic nitrogen), and temperature on total phytoplankton biomass and phytoplankton community structure. Generally, the model gave plausible results and enabled the identification of the longitudinal role of the abiotic factors on the observed phytoplankton dynamics. River flow fluctuations and the resulting salinity and light availability changes (physical environment) dominate the up-estuary processes and loosen the coupling between nitrogen and phytoplankton. Further insights into the phytoplankton community response were provided by the positive path coefficients between the physical environment and diatoms, chlorophytes, and cryptophytes in the down-estuary sections. The latter finding supports an earlier hypothesis that these three groups dominate the phytoplankton community during high freshwater conditions as a result of their faster nutrient uptake and growth rates and their tolerance on low salinity conditions. The relationship between dissolved inorganic nitrogen concentrations and phytoplankton community becomes more apparent as we move to the down-estuary sections. A categorization of the phytoplankton community into cyanobacteria, dinoflagellates and an assemblage that consists of diatoms, chlorophytes, and cryptophytes provided the best results in the upper and middle segments of the estuary. Finally, the optimal down-estuary grouping aggregates diatoms and chlorophytes, lumps together dinoflagellates with cryptophytes, while cyanobacteria are treated separately. These structural shifts in the temporal phytoplankton community patterns probably result from combined bottom-up and top-down control effects.
机译:我们引入贝叶斯结构方程建模框架,以探索Neuse河口(研究期1995—2001)的时空浮游植物群落模式。最初的假设模型考虑了物理环境(流量,盐度和光利用率),氮(溶解的氧化无机氮和总溶解的无机氮)和温度对浮游植物总生物量和浮游植物群落结构的影响。通常,该模型给出了合理的结果,并能够确定非生物因子在所观察到的浮游植物动力学上的纵向作用。河流流量的波动以及由此产生的盐度和光能利用率的变化(物理环境)主导着河口的上升过程,并放松了氮与浮游植物之间的耦合。物理环境与河口下部硅藻,绿藻和隐生植物之间的正路径系数,为浮游植物群落反应提供了进一步的见解。后一个发现支持了一个较早的假设,即这三个群体由于在较高的淡水条件下营养物质的吸收和生长速度更快以及在低盐度条件下的耐受性而在浮游植物群落中占主导地位。随着我们移至河口下部,溶解的无机氮浓度与浮游植物群落之间的关系变得更加明显。将浮游植物群落分类为蓝细菌,鞭毛藻和由硅藻,绿藻类和隐藻类组成的组合,在河口的上部和中部提供了最佳结果。最后,最佳的河口下游种群聚集了硅藻和绿藻类,将角鞭毛与隐藻类混在一起,而将蓝细菌分别处理。临时性浮游植物群落模式的这些结构性转变可能是由自下而上和自上而下的控制效应共同造成的。

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