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污染环境中的热性能曲线:过冷和过热温度协同增加农药毒性

Thermal Performance Curves in a Polluted World: Too Cold and Too Hot Temperatures Synergistically Increase Pesticide Toxicity.

作者信息

Verheyen Julie, Stoks Robby

机构信息

Evolutionary Stress Ecology and Ecotoxicology, University of Leuven, Charles Deberiotstraat 32, B-3000 Leuven, Belgium.

出版信息

Environ Sci Technol. 2023 Feb 28;57(8):3270-3279. doi: 10.1021/acs.est.2c07567. Epub 2023 Feb 14.

Abstract

Ecotoxicological studies typically cover only a limited part of the natural thermal range of populations and ignore daily temperature fluctuations (DTFs). Therefore, we may miss important stressor interaction patterns and have poor knowledge on how pollutants affect thermal performance curves (TPCs), which is needed to improve insights into the fate of populations to warming in a polluted world. We tested the single and combined effects of pesticide exposure and DTFs on the TPCs of low- and high-latitude populations of damselfly larvae. While chlorpyrifos did not have any effect at the intermediate mean temperatures (20-24 °C), it became toxic (reflecting synergisms) at lower (≤16 °C, reduced growth) and especially at higher (≥28 °C, reduced survival and growth) mean temperatures, resulting in more concave-shaped TPCs. Remarkably, these toxicity patterns were largely consistent at both latitudes and hence across a natural thermal gradient. Moreover, DTFs magnified the pesticide-induced survival reductions at 34 °C. The TPC perspective allowed us to identify different toxicity patterns and interaction types (mainly additive vs synergistic) across the thermal gradient. This highlights the importance of using thermal gradients to make more realistic predictions about the impact of pesticides in a warming world and of warming in a polluted world.

摘要

生态毒理学研究通常仅涵盖种群自然热范围的有限部分,并且忽略了每日温度波动(DTF)。因此,我们可能会错过重要的应激源相互作用模式,并且对污染物如何影响热性能曲线(TPC)了解不足,而这对于深入了解受污染世界中种群对变暖的命运至关重要。我们测试了农药暴露和DTF对豆娘幼虫低纬度和高纬度种群TPC的单一和联合影响。虽然毒死蜱在中等平均温度(20-24°C)下没有任何影响,但在较低(≤16°C,生长减少)尤其是较高(≥28°C,生存和生长减少)平均温度下变得有毒(反映协同作用),导致TPC更呈凹形。值得注意的是,这些毒性模式在两个纬度上基本一致,因此跨越了自然热梯度。此外,DTF在34°C时放大了农药引起的生存减少。TPC视角使我们能够识别热梯度上不同的毒性模式和相互作用类型(主要是相加与协同)。这突出了利用热梯度对变暖世界中农药的影响以及受污染世界中变暖的影响做出更现实预测的重要性。

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