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在水蚤-微寄生酵母模型中,戊唑醇的施用量和施用时间显示出强大的抑菌作用。

Concentration and timing of application reveal strong fungistatic effect of tebuconazole in a Daphnia-microparasitic yeast model.

作者信息

Cuco Ana P, Santos Joana I, Abrantes Nelson, Gonçalves Fernando, Wolinska Justyna, Castro Bruno B

机构信息

Department of Biology, University of Aveiro, Aveiro, Portugal; CESAM, University of Aveiro, Aveiro, Portugal.

Department of Biology, University of Aveiro, Aveiro, Portugal; CESAM, University of Aveiro, Aveiro, Portugal.

出版信息

Aquat Toxicol. 2017 Dec;193:144-151. doi: 10.1016/j.aquatox.2017.10.013. Epub 2017 Oct 20.

Abstract

Given the importance of pollutant effects on host-parasite relationships and disease spread, the main goal of this study was to assess the influence of different exposure scenarios for the fungicide tebuconazole (concentration×timing of application) on a Daphnia-microparasitic yeast experimental system. Previous results had demonstrated that tebuconazole is able to suppress Metschnikowia bicuspidata infection at ecologically-relevant concentrations; here, we aimed to obtain an understanding of the mechanism underlying the anti-parasitic (fungicidal or fungistatic) action of tebuconazole. We exposed the Daphnia-yeast system to four nominal tebuconazole concentrations at four timings of application (according to the predicted stage of parasite development), replicated on two Daphnia genotypes, in a fully crossed experiment. An "all-or-nothing" effect was observed, with tebuconazole completely suppressing infection from 13.5μgl upwards, independent of the timing of tebuconazole application. A follow-up experiment confirmed that the suppression of infection occurred within a narrow range of tebuconazole concentrations (3.65-13.5μgl), although a later application of the fungicide had to be compensated for by a slight increase in concentration to elicit the same anti-parasitic effect. The mechanism behind this anti-parasitic effect seems to be the inhibition of M. bicuspidata sporulation, since tebuconazole was effective in preventing ascospore production even when applied at a later time. However, this fungicide also seemed to affect the vegetative growth of the yeast, as demonstrated by the enhanced negative effect of the parasite (increasing mortality in one of the host genotypes) at a later time of application of tebuconazole, when no signs of infection were observed. Fungicide contamination can thus affect the severity and spread of disease in natural populations, as well as the inherent co-evolutionary dynamics in host-parasite systems.

摘要

鉴于污染物对宿主 - 寄生虫关系和疾病传播的影响至关重要,本研究的主要目标是评估不同暴露方案(杀菌剂戊唑醇的浓度×施用时间)对水蚤 - 微寄生酵母实验系统的影响。先前的结果表明,戊唑醇在生态相关浓度下能够抑制双尖梅奇酵母感染;在此,我们旨在了解戊唑醇抗寄生虫(杀菌或抑菌)作用的潜在机制。在一个完全交叉实验中,我们将水蚤 - 酵母系统在四个施用时间(根据寄生虫发育的预测阶段)暴露于四种名义戊唑醇浓度下,并在两种水蚤基因型上进行重复实验。观察到一种“全有或全无”的效应,戊唑醇从13.5μg/L起完全抑制感染,与戊唑醇的施用时间无关。后续实验证实,感染抑制发生在戊唑醇浓度的狭窄范围内(3.65 - 13.5μg/L),尽管杀菌剂的后期施用必须通过浓度的轻微增加来补偿,以产生相同的抗寄生虫效果。这种抗寄生虫作用背后的机制似乎是抑制双尖梅奇酵母的孢子形成,因为即使在后期施用戊唑醇时也能有效防止子囊孢子产生。然而,这种杀菌剂似乎也影响酵母的营养生长,这在戊唑醇后期施用时寄生虫的负面影响增强(在一种宿主基因型中死亡率增加)中得到证明,此时未观察到感染迹象。因此,杀菌剂污染会影响自然种群中疾病的严重程度和传播,以及宿主 - 寄生虫系统中固有的共同进化动态。

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