Schmidt Anja, Hines Jes, Türke Manfred, Buscot François, Schädler Martin, Weigelt Alexandra, Gebler Alban, Klotz Stefan, Liu Tao, Reth Sascha, Trogisch Stefan, Roy Jacques, Wirth Christian, Eisenhauer Nico
Helmholtz Centre for Environmental Research - UFZ Halle (Saale) Germany.
German Centre for Integrative Biodiversity Research (iDiv) Halle-Jena-Leipzig Leipzig Germany.
Ecol Evol. 2021 Oct 4;11(21):15174-15190. doi: 10.1002/ece3.8198. eCollection 2021 Nov.
Across the globe, ecological communities are confronted with multiple global environmental change drivers, and they are responding in complex ways ranging from behavioral, physiological, and morphological changes within populations to changes in community composition and food web structure with consequences for ecosystem functioning. A better understanding of global change-induced alterations of multitrophic biodiversity and the ecosystem-level responses in terrestrial ecosystems requires holistic and integrative experimental approaches to manipulate and study complex communities and processes above and below the ground. We argue that mesocosm experiments fill a critical gap in this context, especially when based on ecological theory and coupled with microcosm experiments, field experiments, and observational studies of macroecological patterns. We describe the design and specifications of a novel terrestrial mesocosm facility, the iDiv Ecotron. It was developed to allow the setup and maintenance of complex communities and the manipulation of several abiotic factors in a near-natural way, while simultaneously measuring multiple ecosystem functions. To demonstrate the capabilities of the facility, we provide a case study. This study shows that changes in aboveground multitrophic interactions caused by decreased predator densities can have cascading effects on the composition of belowground communities. The iDiv Ecotrons technical features, which allow for the assembly of an endless spectrum of ecosystem components, create the opportunity for collaboration among researchers with an equally broad spectrum of expertise. In the last part, we outline some of such components that will be implemented in future ecological experiments to be realized in the iDiv Ecotron.
在全球范围内,生态群落面临着多种全球环境变化驱动因素,它们正以复杂的方式做出响应,从种群内部的行为、生理和形态变化到群落组成和食物网结构的变化,这些变化对生态系统功能产生影响。要更好地理解全球变化引起的陆地生态系统中多营养级生物多样性的改变以及生态系统水平的响应,需要采用整体和综合的实验方法来操纵和研究地上和地下的复杂群落及过程。我们认为,在这种情况下,中宇宙实验填补了关键空白,特别是当基于生态理论并与微宇宙实验、野外实验以及宏观生态模式的观测研究相结合时。我们描述了一种新型陆地中宇宙设施——iDiv生态otron的设计和规格。它的开发是为了能够以近乎自然的方式建立和维持复杂群落,并操纵多种非生物因素,同时测量多种生态系统功能。为了展示该设施的能力,我们提供了一个案例研究。这项研究表明,捕食者密度降低导致的地上多营养级相互作用的变化会对地下群落的组成产生级联效应。iDiv生态otron的技术特性允许组装无数种生态系统组件,为具有同样广泛专业知识的研究人员之间的合作创造了机会。在最后一部分,我们概述了一些将在未来在iDiv生态otron中开展的生态实验中实施的组件。