WasserCluster Lunz - Biologische Station, Lunz am See, Austria; Department of Evolutionary Biology, Ecology and Environmental Sciences, University of Barcelona, Barcelona, Spain.
Catalan Institute for Water Research (ICRA), Girona, Spain.
Sci Total Environ. 2017 Dec 1;599-600:1802-1812. doi: 10.1016/j.scitotenv.2017.05.113. Epub 2017 May 20.
Understanding DOM transport and reactivity in rivers is essential to having a complete picture of the global carbon cycle. In this study, we explore the effects of hydrological variability and downstream transport on dissolved organic matter (DOM) dynamics in a Mediterranean river. We sampled the main stem of the river Tordera from the source to the sea, over a range of fifteen hydrological conditions including extreme events (flood and drought). By exploring spatial and temporal gradients of DOM fluorescence properties, river hydrology was found to be a significant predictor of DOM spatial heterogeneity. An additional space-resolved mass balance analysis performed on four contrasting hydrological conditions revealed that this was due to a shift in the biogeochemical function of the river. Flood conditions caused a conservative transport of DOM, generating a homogeneous, humic-like spatial profile of DOM quality. Lower flows induced a non-conservative, reactive transport of DOM, which enhanced the spatial heterogeneity of DOM properties. Moreover, the downstream evolution of DOM chemostatic behaviour revealed that the role of hydrology in regulating DOM properties increased gradually downstream, indicating an organised inter-dependency between the spatial and the temporal dimensions. Overall, our findings reveal that riverine DOM dynamics is in constant change owing to varying hydrological conditions, and emphasize that in order to fully understand the role of rivers in the global carbon cycle, it is necessary to take into account the full range of hydrological variability, from floods to droughts.
了解DOM 在河流中的输运和反应对于全面了解全球碳循环至关重要。本研究探讨了水文变化和下游输运对地中海河流中溶解有机 matter(DOM)动态的影响。我们在十五种不同的水文条件下(包括极端事件:洪水和干旱),对源自源头到入海口的河流 Tordera 的干流进行了采样。通过探索 DOM 荧光性质的时空梯度,发现河流水文是 DOM 空间异质性的重要预测因子。在四种对比鲜明的水文条件下进行的附加空间分辨质量平衡分析表明,这是由于河流的生物地球化学功能发生了转变。洪水条件导致 DOM 的保守输运,生成了 DOM 质量的同质、腐殖质样空间分布。低流量引起 DOM 的非保守反应性输运,增强了 DOM 性质的空间异质性。此外,DOM 化学计量行为的下游演化表明,水文学在调节 DOM 性质方面的作用逐渐增强,这表明空间和时间维度之间存在有组织的相互依存关系。总体而言,我们的研究结果表明,由于水文条件的变化,河流水体 DOM 动态处于持续变化之中,强调为了全面了解河流在全球碳循环中的作用,有必要考虑从洪水到干旱等全范围的水文变异性。