The Impact of Flow Velocity on Environmental DNA Detectability for the Application in River Systems

Q1 Agricultural and Biological Sciences
Jelle A. Dercksen, Jan Willem Foppen, Astrid Blom, Krijn B. Trimbos, Julia Gebert, Thom A. Bogaard, Laura Maria Stancanelli
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Abstract

Organisms perpetually release genetic material in their surroundings, referred to as environmental DNA (eDNA), which can be captured and subsequently analyzed to detect biodiversity across the tree of life. In lotic, dynamic environments, little is known about the specific factors that affect the concentration of eDNA between release by the host and its dissemination into the environment. This gap in knowledge introduces significant uncertainty when applying eDNA as a monitoring tool. Our objective is to provide insight on the factors that affect the eDNA concentrations in ecosystems representative of rivers and streams. To this end, we conducted a series of laboratory experiments in a rotating circular (annular) flume, which allows for extended degradation experiments under conditions of flow. Here, we show that flow velocity impacts the observed eDNA concentration over time. Our results suggest that flow-induced transport keeps eDNA in suspension, reducing eDNA removal from the water column, which increased the observed concentration of eDNA. We observed a temporary increase in eDNA concentration over the early phase of the flume experiment with the highest flow velocity. This increase in eDNA concentration seems to be due to a combination of low eDNA degradation rates and high shear stress, which fragment and subsequently homogenize eDNA particles over the water column. The results of our study show the importance of better understanding and assessing the detection probability of eDNA, both in controlled laboratory and larger-scale environmental conditions.

Abstract Image

流速对河流系统中环境DNA可探测性的影响
生物体在其周围环境中不断释放遗传物质,称为环境DNA (eDNA),可以捕获并随后分析以检测整个生命之树的生物多样性。在动态环境中,我们对影响宿主释放和传播到环境中的eDNA浓度的具体因素知之甚少。这种知识上的差距在应用eDNA作为监测工具时带来了重大的不确定性。我们的目标是深入了解影响河流和溪流生态系统中eDNA浓度的因素。为此,我们在一个旋转的圆形(环形)水槽中进行了一系列的实验室实验,该水槽允许在流动条件下进行扩展的降解实验。在这里,我们表明流速随时间影响观察到的eDNA浓度。我们的研究结果表明,流动诱导的运输使eDNA处于悬浮状态,减少了eDNA从水柱中的去除,从而增加了观察到的eDNA浓度。我们观察到eDNA浓度在水槽实验的早期阶段以最高流速暂时增加。这种eDNA浓度的增加似乎是由于低eDNA降解率和高剪切应力的结合,剪切应力使eDNA颗粒在水柱上破碎并随后均匀化。我们的研究结果显示了更好地理解和评估eDNA的检测概率的重要性,无论是在受控的实验室还是更大规模的环境条件下。
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来源期刊
Environmental DNA
Environmental DNA Agricultural and Biological Sciences-Ecology, Evolution, Behavior and Systematics
CiteScore
11.00
自引率
0.00%
发文量
99
审稿时长
16 weeks
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