Departament d'Ecologia, Facultat de Biologia, Universitat de Barcelona , Av. Diagonal 643, 08028, Barcelona, Spain.
Environ Sci Technol. 2013 Sep 17;47(18):10155-62. doi: 10.1021/es400726e. Epub 2013 Aug 30.
High variability in the natural abundance of nitrogen stable isotopes (δ(15)N) has been reported for primary uptake compartments (PUCs; e.g., epilithon, filamentous algae, bryophytes, macrophytes) in human-impacted aquatic ecosystems, but the origin of this variability is not yet well understood. We examined how δ(15)N of different PUC types relate to δ(15)N of dissolved inorganic nitrogen (DIN) species (nitrate and ammonium) and to the stream nutrient concentrations in which they grow. We selected 25 reaches located across the fluvial network of La Tordera catchment (NE Spain, 868.5 km(2)), encompassing a gradient of human pressures from headwaters to the river valley. δ(15)N-PUC variability was mostly explained by location within the fluvial network and was strongly related to the δ(15)N of DIN species, especially of ammonium. Models were stronger for PUCs growing within the stream channel and thus using streamwater as their main source of nutrients. Regression models including nutrient concentrations improved the prediction power for δ(15)N-PUCs, suggesting that nutrient concentrations and stoichiometry cannot be ignored in explaining the natural abundance of nitrogen isotopes in PUCs. These results provide insights into what controls variability in δ(15)N of PUCs within a stream network, with implications for the application of stables isotopes as an ecological tool.
在受人类活动影响的水生生态系统中,初级吸收区(PUC;例如,附生藻类、丝状藻类、苔藓、大型藻类)中的氮稳定同位素(δ(15)N)自然丰度存在高度变异性,但这种变异性的起源尚不清楚。我们研究了不同 PUC 类型的 δ(15)N 与溶解无机氮(DIN)物种(硝酸盐和铵盐)的 δ(15)N 以及它们生长的溪流养分浓度之间的关系。我们选择了位于西班牙东北部拉托德拉流域(868.5 平方公里)河流网络中的 25 个河段,这些河段涵盖了从源头到河谷的人类压力梯度。PUC 的 δ(15)N 变异性主要由河流网络中的位置决定,与 DIN 物种的 δ(15)N 密切相关,尤其是铵盐。对于在溪流通道中生长的 PUC,模型更强,因为它们主要利用溪流作为其养分的主要来源。包括养分浓度的回归模型提高了对 δ(15)N-PUC 的预测能力,这表明在解释 PUC 中氮稳定同位素的自然丰度时,不能忽略养分浓度和化学计量。这些结果提供了对溪流网络中 PUC 的 δ(15)N 变异性控制因素的深入了解,这对将稳定同位素作为生态工具的应用具有重要意义。