U.S. Geological Survey, School of Oceanography, University of Washington, Box 355351, Seattle, WA 98195, USA.
Sci Total Environ. 2012 May 15;425:155-68. doi: 10.1016/j.scitotenv.2012.03.008. Epub 2012 Apr 4.
Evaluating water quality and the health of aquatic organisms is challenging in systems with systematic diel (24 h) or less predictable runoff-induced changes in water composition. To advance our understanding of how to evaluate environmental health in these dynamic systems, field studies of diel cycling were conducted in two streams (Silver Bow Creek and High Ore Creek) affected by historical mining activities in southwestern Montana. A combination of sampling and modeling tools was used to assess the toxicity of metals in these systems. Diffusive Gradients in Thin Films (DGT) samplers were deployed at multiple time intervals during diel sampling to confirm that DGT integrates time-varying concentrations of dissolved metals. Site specific water compositions, including time-integrated dissolved metal concentrations determined from DGT, a competitive, multiple-toxicant biotic ligand model, and the Windemere Humic Aqueous Model Version 6.0 (WHAM VI) were used to determine the equilibrium speciation of dissolved metals and biotic ligands. The model results were combined with previously collected toxicity data on cutthroat trout to derive a relationship that predicts the relative survivability of these fish at a given site. This integrative approach may prove useful for assessing water quality and toxicity of metals to aquatic organisms in dynamic systems and evaluating whether potential changes in environmental health of aquatic systems are due to anthropogenic activities or natural variability.
评估具有系统日变化(24 小时)或更不可预测的径流水引起的水质和水生生物健康变化的系统中的水质和水生生物健康具有挑战性。为了深入了解如何在这些动态系统中评估环境健康,在受蒙大拿州西南部历史采矿活动影响的两条溪流(银弓溪和高矿溪)中进行了日变化的现场研究。采用了采样和建模工具的组合来评估这些系统中金属的毒性。在日采样期间的多个时间间隔部署了扩散梯度薄膜(DGT)采样器,以确认 DGT 可整合溶解金属的时变浓度。使用特定于地点的水成分,包括来自 DGT 的时间积分溶解金属浓度、竞争性多毒物生物配体模型以及温德米尔水合模型版本 6.0(WHAM VI),确定溶解金属和生物配体的平衡形态。将模型结果与先前收集的关于虹鳟鱼的毒性数据相结合,得出一个预测这些鱼在给定地点相对存活率的关系。这种综合方法可能有助于评估动态系统中水生生物的水质和金属毒性,并评估水生系统的环境健康是否因人为活动或自然变异性而发生变化。