Macrofauna invertebrates of forest floors provide important functions in the decomposition process of soil organic matter, which is affected by the nutrient stoichiometry of the leaf litter. Climate change effects on forest ecosystems include warming and decreasing litter quality (e.g. higher C : nutrient ratios) induced by higher atmospheric CO(2) concentrations. While litter-bag experiments unravelled separate effects, a mechanistic understanding of how interactions between temperature and litter stoichiometry are driving decomposition rates is lacking. In a laboratory experiment, we filled this void by quantifying decomposer consumption rates analogous to predator-prey functional responses that include the mechanistic parameters handling time and attack rate. Systematically, we varied the body masses of isopods, the environmental temperature and the resource between poor (hornbeam) and good quality (ash). We found that attack rates increased and handling times decreased (i) with body masses and (ii) temperature. Interestingly, these relationships interacted with litter quality: small isopods possibly avoided the poorer resource, whereas large isopods exhibited increased, compensatory feeding of the poorer resource, which may be explained by their higher metabolic demands. The combination of metabolic theory and ecological stoichiometry provided critically important mechanistic insights into how warming and varying litter quality may modify macrofaunal decomposition rates.

译文

林地无脊椎动物:无脊椎动物在土壤有机质的分解过程中起着重要的作用,而有机物的分解受叶片凋落物养分化学计量学的影响。气候变化对森林生态系统的影响包括气候变暖和凋落物质量下降(例如较高的大气CO(2)浓度引起的凋落物质量(例如较高的C:养分比))。虽然垃圾袋实验无法揭示单独的影响,但对温度和垃圾化学计量之间的相互作用如何驱动分解速率的机理缺乏了解。在实验室实验中,我们通过量化分解器的消耗速率来填补这一空白,类似于消耗-捕食者功能响应,包括机械参数处理时间和攻击率。我们在系统上改变了等足动物的体重,环境温度以及贫瘠(角树)和优质(灰烬)之间的资源。我们发现(i)随着体重和(ii)温度的升高,攻击率增加,处理时间减少。有趣的是,这些关系与垫料质量相互影响:小等足动物可能避免了较贫穷的资源,而大等足动物表现出了对较贫穷资源的补偿性补给,这可以用它们较高的新陈代谢需求来解释。代谢理论与生态化学计量学的结合提供了关于变暖和不同垫料质量可能如何改变大型动物分解速率的至关重要的机械见解。

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