采样方法和季节对冷水鱼类硒建模的影响以及对基于组织的水质基准的影响。

IF 3 4区 环境科学与生态学 Q2 ENVIRONMENTAL SCIENCES Integrated Environmental Assessment and Management Pub Date : 2025-01-01 DOI:10.1002/ieam.4859
Maíra Peixoto Mendes, Beatriz Cupe-Flores, Katherine Woolhouse, Stacey Fernandes, Karsten Liber
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引用次数: 0

摘要

水生生态系统的硒污染已导致一些对硒敏感的鱼类物种在当地灭绝。尽管硒暴露主要通过饮食发生,但在模拟硒从沉积物/碎屑/外周生物通过底栖大型无脊椎动物(BMI)向鱼类的转移和生物累积方面存在相当大的不确定性。在这里,我们估计了居住在加拿大北部铀工厂下游北方湖泊中的四种冷水鱼类(北方梭子鱼、白吸盘鱼、湖白鱼和九棘刺鱼)的硒浓度。此外,我们还评估了BMI和外周生物采样方法(人工基质与抓取样本)、季节(夏季与冬季)和模型(美国环保局与ADEPT)对鱼类组织中硒浓度估计的潜在影响。将结果与特定地点的基准和观察到的常驻鱼类中的Se浓度进行比较。2019年夏天,在10个采样站(秃鹫湖2个,麦克莱恩湖8个)使用人工基质(n=4)和沉积物采集样本(n=3)对外围生物和BMI进行了采样。2021年冬天,在麦克莱恩湖(n=3)通过冰洞使用沉积物抓斗采样器采集样本。鱼类组织中估计的硒浓度取决于模型中使用的表层沉积物或外周生物硒浓度。在秃鹫湖,使用抓取样本数据(17.3±11.5µg/g d.w.)估计的北部梭子鱼肌肉中的硒浓度(而不是人工基质(34.5±1.2µg/g d.w.))与该物种中观察到的平均浓度(19.0±1.4µg/g d.w.)相当。在麦克莱恩湖,使用两种采样方法的数据估计的饲料鱼硒体负担与测量数据相当。据估计,与夏季(4.8±1.6µg/g d.w)相比,所有鱼类在冬季(1.0±0.3µg/g d.w)的全身硒平均浓度显著较低。有必要进行进一步调查,以了解饮食硒暴露的潜在季节变化与鱼类繁殖和生命早期阶段的关系。
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The influence of sampling method and season on modeling of selenium into coldwater fish and implications on tissue-based water quality benchmarks.

Selenium (Se) contamination of aquatic ecosystems has led to the local extirpation of some Se-sensitive fish species. Although Se exposure occurs primarily via diet, considerable uncertainty lies in modeling Se transfer and bioaccumulation from sediment, detritus, and/or periphyton through benthic macroinvertebrates (BMI) to fish. Here we estimated Se concentrations in four coldwater fish species (northern pike, white sucker, lake whitefish, and ninespine stickleback) inhabiting boreal lakes downstream from a uranium mill in northern Canada. In addition, we evaluated the potential effects of BMI and periphyton sampling methods (artificial substrates vs. grab samples), seasons (summer vs. winter), and models (USEPA vs. Assessment of the Dispersion and Effects of Parameter Transport) on the estimated Se concentrations in fish tissue. Results were compared with site-specific benchmarks and observed Se concentrations in resident fish. In summer 2019, periphyton and BMI were sampled at 10 sampling stations (two in Vulture Lake and eight in McClean Lake) using artificial substrates (n = 4) and sediment grab samples (n = 3). In winter 2021, samples were collected in McClean Lake (n = 3) through ice holes using a sediment grab sampler. Estimated Se concentrations in fish tissue depended on the surface sediment or periphyton Se concentrations used in the models. At Vulture Lake, Se concentrations in northern pike muscle estimated using the grab sample data (17.3 ± 11.5 µg/g DW), but not the artificial substrates (34.5 ± 1.2 µg/g DW), were comparable with the observed mean concentration (19.0 ± 1.4 µg/g DW) in this species. At McClean Lake, Se body burdens in forage fish estimated using data from both sampling methods were comparable with measured data. Significantly lower mean whole-body Se concentrations were estimated for all fish species in winter (1.0 ± 0.3 µg/g DW) relative to summer (4.8 ± 1.6 µg/g DW). Further investigation is necessary to understand how potential seasonal shifts in dietary Se exposure relate to fish reproduction and early life stages.

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来源期刊
Integrated Environmental Assessment and Management
Integrated Environmental Assessment and Management ENVIRONMENTAL SCIENCESTOXICOLOGY&nbs-TOXICOLOGY
CiteScore
5.90
自引率
6.50%
发文量
156
期刊介绍: Integrated Environmental Assessment and Management (IEAM) publishes the science underpinning environmental decision making and problem solving. Papers submitted to IEAM must link science and technical innovations to vexing regional or global environmental issues in one or more of the following core areas: Science-informed regulation, policy, and decision making Health and ecological risk and impact assessment Restoration and management of damaged ecosystems Sustaining ecosystems Managing large-scale environmental change Papers published in these broad fields of study are connected by an array of interdisciplinary engineering, management, and scientific themes, which collectively reflect the interconnectedness of the scientific, social, and environmental challenges facing our modern global society: Methods for environmental quality assessment; forecasting across a number of ecosystem uses and challenges (systems-based, cost-benefit, ecosystem services, etc.); measuring or predicting ecosystem change and adaptation Approaches that connect policy and management tools; harmonize national and international environmental regulation; merge human well-being with ecological management; develop and sustain the function of ecosystems; conceptualize, model and apply concepts of spatial and regional sustainability Assessment and management frameworks that incorporate conservation, life cycle, restoration, and sustainability; considerations for climate-induced adaptation, change and consequences, and vulnerability Environmental management applications using risk-based approaches; considerations for protecting and fostering biodiversity, as well as enhancement or protection of ecosystem services and resiliency.
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