Leclerc Camille, Reynaud Nathalie, Danis Pierre-Alain, Moatar Florentina, Daufresne Martin, Argillier Christine, Usseglio-Polatera Philippe, Verneaux Valérie, Dedieu Nicolas, Frossard Victor, Sentis Arnaud
INRAE, Aix-Marseille Univ., RECOVER, Aix-en-Provence, France.
Pôle R&D Écosystèmes Lacustres (ECLA), OFB-INRAE-USMB, Aix-en-Provence, France.
Glob Chang Biol. 2023 May;29(9):2450-2465. doi: 10.1111/gcb.16642. Epub 2023 Feb 26.
While many efforts have been devoted to understand variations in food web structure among terrestrial and aquatic ecosystems, the environmental factors influencing food web structure at large spatial scales remain hardly explored. Here, we compiled biodiversity inventories to infer food web structure of 67 French lakes using an allometric niche-based model and tested how environmental variables (temperature, productivity, and habitat) influence them. By applying a multivariate analysis on 20 metrics of food web topology, we found that food web structural variations are represented by two distinct complementary and independent structural descriptors. The first is related to the overall trophic diversity, whereas the second is related to the vertical structure. Interestingly, the trophic diversity descriptor was mostly explained by habitat size (26.7% of total deviance explained) and habitat complexity (20.1%) followed by productivity (dissolved organic carbon: 16.4%; nitrate: 9.1%) and thermal variations (10.7%). Regarding the vertical structure descriptor, it was mostly explained by water thermal seasonality (39.0% of total deviance explained) and habitat depth (31.9%) followed by habitat complexity (8.5%) and size (5.5%) as well as annual mean temperature (5.6%). Overall, we found that temperature, productivity, and habitat characteristics collectively shape lake food web structure. We also found that intermediate levels of productivity, high levels of temperature (mean and seasonality), as well as large habitats are associated with the largest and most complex food webs. Our findings, therefore, highlight the importance of focusing on these three components especially in the context of global change, as significant structural changes in aquatic food webs could be expected under increased temperature, pollution, and habitat alterations.
尽管人们付出了诸多努力来理解陆地和水生生态系统中食物网结构的差异,但在大空间尺度上影响食物网结构的环境因素仍几乎未被探索。在此,我们汇编了生物多样性清单,使用基于异速生长生态位的模型推断67个法国湖泊的食物网结构,并测试环境变量(温度、生产力和栖息地)如何影响它们。通过对食物网拓扑结构的20个指标进行多变量分析,我们发现食物网结构变化由两个不同的互补且独立的结构描述符表示。第一个与总体营养多样性有关,而第二个与垂直结构有关。有趣的是,营养多样性描述符主要由栖息地大小(解释了总偏差的26.7%)和栖息地复杂性(20.1%)解释,其次是生产力(溶解有机碳:16.4%;硝酸盐:9.1%)和热变化(10.7%)。关于垂直结构描述符,它主要由水温季节性(解释了总偏差的39.0%)和栖息地深度(31.9%)解释,其次是栖息地复杂性(8.5%)、大小(5.5%)以及年平均温度(5.6%)。总体而言,我们发现温度、生产力和栖息地特征共同塑造了湖泊食物网结构。我们还发现,中等水平的生产力、高水平的温度(平均和季节性)以及大型栖息地与最大且最复杂的食物网相关。因此,我们的研究结果强调了尤其在全球变化背景下关注这三个组成部分的重要性,因为在温度升高、污染和栖息地改变的情况下,预计水生食物网会发生重大结构变化。