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A Multitracer Approach to Quantifying Resource Utilization Strategies in Lake Trout Populations in Lake Huron

机译:一种多种式方法来量化湖泊湖鳟鱼群中资源利用策略

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Lake ecosystems are threatened by an array of stressors. An understanding of how food webs and bioaccumulation dynamics respond to these challenges requires the quantification of energy flow. We present a combined, multitracer approach using both polychlorinated biphenyls (PCBs) and stable isotopes to trace energy flow, and to quantify how lake trout feeding strategies have adapted to changes in food web structure in 3 basins of Lake Huron (ON, Canada). This combined tracer approach allows the quantification of dietary proportions (using stable isotopes), which are then integrated using a novel PCB tracer approach that employs knowledge of PCB bioaccumulation pathways, to estimate consumption and quantify energy flow between age cohorts of individual fish across Lake Huron. We observed basin-specific differences in ultimate energy sources for lake trout, with Georgian Bay lake trout deriving almost 70% of their energy from benthic resources compared with 16 and 33% for Main Basin and North Channel lake trout, respectively. These differences in resource utilization are further magnified when they are contrasted with age. The dependency on pelagic energy sources in the Main Basin and North Channel suggests that these populations will be the most negatively affected by the ongoing trophic collapse in Lake Huron. Our study demonstrates the utility of a multitracer approach to quantify the consequences of food web adaptations to changes in aquatic ecosystems. Environ Toxicol Chem 2019;38:1245-1255. (c) 2019 SETAC
机译:湖生态系统受到一系列压力源的威胁。了解食物网和生物积累动态如何应对这些挑战的方式需要量化能量流量。我们使用多氯联苯(PCB)和稳定同位素来呈现一种组合的多层方法,以追踪能量流动,并量化湖泊饲养策略如何适应休伦湖(加拿大湖)3个盆地中食品网结构的变化。这种组合的示踪方法允许定量膳食比例(使用稳定同位素),然后使用采用PCB生物积累途径的新颖PCB示踪方法集成,以估计消费和量化在休伦湖的个体鱼的年龄队列之间的能量流动。我们观察了湖泊鳟鱼终极能源的盆地特异性差异,格鲁吉亚湾湖泊鳟鱼分别从底座和北通道湖鳟鱼的16%和33%的近底资源获得了近70%的能量。当随着年龄的年龄形成对比时,资源利用的这些差异进一步放大。主盆地和北渠道的依赖依赖性表明,这些人群将受到休伦湖正在进行的营养不闻性崩溃影响最大的影响。我们的研究表明,多种子型方法的效用量化食品网络适应对水生生态系统变化的后果。环境毒素化学2019; 38:1245-1255。 (c)2019 Setac

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