Pesticide effects at the edge? Implications of downstream agrochemical pollution for organisms in refugia
Pesticide effects at the edge? Implications of downstream agrochemical pollution for organisms in refugia
批准号:
421742160
负责人:
Professor Dr. Ralf B. Schäfer, since 1/2020
金额:
$0.0万
依托单位国家:
德国
项目类别:
Research Grants
财政年份:
2019
资助国家:
德国
项目状态:
已结题
起止时间:
2018-12-31 至 2021-12-31
中文摘要
根据过去20年的几项研究,相对确定的是,农药塑造了溪流中的无脊椎动物群落,耐受类群的相对丰度增加。在空间动力学和适应过程方面,我们对毒物效应的反应和长期后果的了解仍然不足。模型研究表明,在耐受性方面对杀虫剂的遗传适应可能会传播到未受污染的斑块。然而,关于农药污染的下游影响传播到未受污染的上游部分的生物的潜力的实证研究很少。在这个项目中,我们将研究不同的无脊椎动物,在何种程度上,农药的影响可以传播到避难所的有机体。该项目得益于一项全国性的农药监测方案(实施全国小型水体农药监测),该方案免费提供高质量的农药数据、高分辨率的物理化学数据以及无脊椎动物和硅藻的装配数据。我们将在农药毒性较高的农业地点和两个距离(避难所边缘和更远的上游)的避难所采集三种无脊椎动物的样本,包括伽马科、毛翅目和瞬翅目。使用快速测试,我们将确定无脊椎动物的耐受性,这将使我们能够评估潜在的适应能力。此外,我们还将确定伽马鱼的遗传多样性和能量储备。我们假设,这种适应减少了遗传多样性,并传播到避难所边缘的未受污染的斑块。此外,根据资源分配的概念,我们假设更高的耐受性与更高的防御机制能量分配相关,从而导致与耐受性较差的生物体相比,能量储备更低。总体而言,这项研究项目将大大加深对先前研究(Shahid等人)中观察到的受污染生境斑块具有更高耐受性的机制的理解(Shahid等人。2018年),它将推进我们对非污染地区生物和种群污染成本的评估。
英文摘要
Based on several studies in the last two decades, it is relatively well established that pesticides shape invertebrate assemblages in streams, with an increase in the relative abundance of tolerant taxa. Our understanding of the response and long-term consequences of toxicant effects is still deficient with respect to spatial dynamics and adaptation processes. Genetic adaptations to pesticides in terms of tolerance may propagate to non-polluted patches as shown in modelling studies. However, empirical studies on the potential of downstream effects of pesticide pollution to propagate to organisms in non-polluted upstream sections are scarce. In this project, we will examine for different invertebrates to which extent pesticide effects can propagate to organisms in refugia. The project profits from a nationwide pesticide monitoring programme (Implementation of the national monitoring of small water bodies for pesticides) that provides high quality pesticide data, high resolution physicochemical data as well as assemblage data on invertebrates and diatoms without extra costs. We will sample three invertebrate species, including a gammarid, a trichopteran and an ephemeropteran, in agricultural sites with high pesticide toxicity and in refugia at two distances (edge of refugia and further upstream). Using rapid tests, we will determine the tolerance of the invertebrates, which will enable us to evaluate potential adaptations. Moreover, we will determine the genetic diversity and energy reserves in gammarids. We hypothesise that the adaptation reduces genetic diversity and that this propagates to non-polluted patches at the edge of the refugium. Moreover, following the concept of resource allocation, we assume that a higher tolerance is associated with higher allocation of energy to defence mechanisms, resulting in lower energy reserves compared to less tolerant organisms. Overall, this research project will add considerably to the understanding of the mechanisms underlying a higher tolerance observed in polluted habitat patches in a previous study (Shahid et al. 2018) and it will advance our assessment of the costs of pollution for organisms and populations in non-polluted areas.
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