Land‐use intensification systematically alters the size structure of aquatic communities in the Neotropics

营养水平 溪流 生物量(生态学) 生态系统 生态学 环境科学 食物网 生物多样性 土地利用 人口规模 食物链 水生生态系统 人口 生物 计算机网络 计算机科学 人口学 社会学
作者
Giovanna Collyer Resende,Daniel M. Perkins,Danielle Katharine Petsch,Tadeu Siqueira,Victor S. Saito
出处
期刊:Global Change Biology [Wiley]
卷期号:29 (14): 4094-4106 被引量:11
标识
DOI:10.1111/gcb.16720
摘要

Land-use and land-cover transitions can affect biodiversity and ecosystem functioning in a myriad of ways, including how energy is transferred within food-webs. Size spectra (i.e. relationships between body size and biomass or abundance) provide a means to assess how food-webs respond to environmental stressors by depicting how energy is transferred from small to larger organisms. Here, we investigated changes in the size spectrum of aquatic macroinvertebrates along a broad land-use intensification gradient (from Atlantic Forest to mechanized agriculture) in 30 Brazilian streams. We expected to find a steeper size spectrum slope and lower total biomass in more disturbed streams due to higher energetic expenditure in physiologically stressful conditions, which has a disproportionate impact on large individuals. As expected, we found that more disturbed streams had fewer small organisms than pristine forest streams, but, surprisingly, they had shallower size spectrum slopes, which indicates that energy might be transferred more efficiently in disturbed streams. Disturbed streams were also less taxonomically diverse, suggesting that the potentially higher energy transfer in these webs might be channelled via a few efficient trophic links. However, because total biomass was higher in pristine streams, these sites still supported a greater number of larger organisms and longer food chains (i.e. larger size range). Our results indicate that land-use intensification decreases ecosystem stability and enhances vulnerability to population extinctions by reducing the possible energetic pathways while enhancing efficiency between the remaining food-web linkages. Our study represents a step forward in understanding how land-use intensification affects trophic interactions and ecosystem functioning in aquatic systems.
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