首页> 外文期刊>Ecology: A Publication of the Ecological Society of America >Ontogenetic functional diversity: Size structure of a keystone predator drives functioning of a complex ecosystem
【24h】

Ontogenetic functional diversity: Size structure of a keystone predator drives functioning of a complex ecosystem

机译:本体功能多样性:梯形捕食者的大小结构驱动复杂生态系统的功能

获取原文
获取原文并翻译 | 示例
           

摘要

A central challenge in community ecology is to understand the connection between biodiversity and the functioning of ecosystems. While traditional approaches have largely focused on species-level diversity, increasing evidence indicates that there exists substantial ecological diversity among individuals within species. By far, the largest source of this intraspecific diversity stems from variation among individuals in ontogenetic stage and size. Although such ontogenetic shifts are ubiquitous in natural communities, whether and how they scale up to influence the structure and functioning of complex ecosystems is largely unknown. Here we take an experimental approach to examine the consequences of ontogenetic niche shifts for the structure of communities and ecosystem processes. In particular we experimentally manipulated the stage structure in a keystone predator, larvae of the dragonfly Anax junius, in complex experimental pond communities to test whether changes in the population stage or size structure of a keystone species scale up to alter community structure and ecosystem processes, and how functional differences scale with relative differences in size among stages. We found that the functional role of A. junius was stage-specific. Altering what stages were present in a pond led to concurrent changes in community structure, primary producer biomass (periphyton and phytoplankton), and ultimately altered ecosystem processes (respiration and net primary productivity), indicating a strong, but stage-specific, trophic cascade. Interestingly, the stage-specific effects did not simply scale with size or biomass of the predator, but instead indicated clear ontogenetic niche shifts in ecological interactions. Thus, functional differences among stages within a keystone species scaled up to alter the functioning of entire ecosystems. Therefore, our results indicate that the classical approach of assuming an average functional role of a species can be misleading because functional roles are dynamic and will change with shifts in the stage structure of the species. In general this emphasizes the importance of accounting for functional diversity below the species level to predict how natural and anthropogenic changes alter the functioning of natural ecosystems.
机译:社区生态面临的一项主要挑战是了解生物多样性与生态系统功能之间的联系。尽管传统方法主要集中在物种层面的多样性,但越来越多的证据表明,物种内部个体之间存在着实质性的生态多样性。到目前为止,这种种内多样性的最大来源是个体个体在个体发育阶段和个体大小上的变异。尽管这种自然发生的变化在自然社区中无处不在,但它们是否扩大以及如何扩大以影响复杂生态系统的结构和功能仍是未知之数。在这里,我们采用一种实验方法来检验个体发育的生态位转移对群落结构和生态系统过程的影响。特别是,我们在复杂的实验池塘社区中通过实验操作了梯形捕食者(蜻蜓Anax junius的幼虫)的阶段结构,以测试梯形物种的种群阶段或大小结构的变化是否会扩大以改变群落结构和生态系统过程,以及功能差异如何随着阶段之间大小的相对差异而扩展。我们发现A. junius的功能作用是特定于阶段的。改变池塘中哪个阶段会导致社区结构,初级生产者生物量(附生植物和浮游植物)同时发生变化,并最终改变生态系统过程(呼吸作用和净初级生产力),表明存在一个强而特定于阶段的营养级联。有趣的是,特定阶段的影响不仅随捕食者的大小或生物量成比例,而且还表明生态相互作用中明显的个体生境利基转移。因此,基石物种内各阶段之间的功能差异扩大,从而改变了整个生态系统的功能。因此,我们的结果表明,假设一个物种具有平均功能角色的经典方法可能会产生误导,因为功能角色是动态的,并且会随着物种阶段结构的变化而变化。总的来说,这强调了考虑物种以下功能多样性的重要性,以预测自然和人为变化如何改变自然生态系统的功能。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号