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Disturbance history influences stressor impacts: effects of a fungicide and nutrients on microbial diversity and litter decomposition

机译:干扰历史影响压力源的影响:杀菌剂和营养物对微生物多样性和凋落物分解的影响

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Streams draining agricultural catchments are severely degraded by multiple stressors, including nutrient enrichment and pesticides. The understanding of how such stressors interact to alter ecosystem structure and function, and how responses of biota reflect their longer-term disturbance history, remains limited. We conducted a multifactorial stream microcosm experiment to investigate how elevated nutrients and a fungicide (azoxystrobin) interact to affect multiple variables associated with leaf decomposition: the biomass, sporulation rate and diversity of aquatic hyphomycete decomposers, litter decomposition rates and detritivore growth. We further manipulated decomposer species composition by using three distinct fungal assemblages drawn from streams with contrasting histories of agricultural disturbance: a forest stream, a mixed land-use stream subject to nutrient enrichment but little pesticide use, and an agricultural stream subjected to both intensive nutrient and pesticide use. We also varied the presence of the detritivorous isopod Asellus aquaticus. The fungicide azoxystrobin reduced both biomass and diversity of aquatic hyphomycetes and growth of A.aquaticus, and had negative knock-on effects on leaf decomposition and fungal sporulation. These impacts further varied with nutrient concentration. Impacts of the fungicide differed markedly among the three fungal assemblages. The agricultural assemblages were dominated by tolerant species and showed some capacity for maintaining processes under pesticide exposure, whereas diversity and functioning were strongly suppressed in the forest stream assemblage, which was dominated by stress-intolerant species. Pesticides, in interaction with other agricultural stressors, can impact microbial diversity and key ecosystem processes underlying the delivery of ecosystem services from streams. The extent of such impacts vary according to the longer-term disturbance history of the biota, and might be most acute when agricultural activity expands into previously uncultivated catchments, as is currently occurring in many regions of the world.
机译:多种压力源,包括营养物质富集和农药,严重破坏了流域农业流域的水质。关于这种压力源如何相互作用以改变生态系统结构和功能以及生物群的反应如何反映其长期干扰历史的理解仍然有限。我们进行了多因素流微观实验,研究了营养物质增加和杀真菌剂(杀螨威)如何影响与叶片分解相关的多个变量:水生菌丝分解物的生物量,孢子形成速率和多样性,凋落物分解速率和有害生物的生长。我们通过使用三种截然不同的真菌组合来操纵分解物的种类组成,这些组合具有与农业扰乱的历史形成鲜明对比的溪流:森林溪流,受养分丰富但农药用量少的混合土地利用溪流以及受到两种密集养分的农业溪流和农药使用。我们还改变了有害的等足类鱼类Asellus aquaticus的存在。杀真菌剂嘧菌酯降低了水生菌丝的生物量和多样性以及水曲霉的生长,并且对叶片分解和真菌孢子形成具有负面的连锁作用。这些影响随着养分浓度的变化而进一步变化。在三种真菌组合中,杀菌剂的影响差异显着。农业组合受耐性树种的支配,并显示出在暴露于农药的情况下具有一定的维持过程的能力,而森林流组合中的多样性和功能却受到强烈抑制,而耐逆性树种则主导了这些组合。农药与其他农业胁迫因素的相互作用会影响微生物多样性和从河流提供生态系统服务所依据的关键生态系统过程。这种影响的程度根据生物群的长期扰动历史而变化,并且当农业活动扩展到以前未经耕种的流域时(如世界许多地区目前所发生的情况)可能最为严重。

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