School of Natural Resources and Environment, University of Florida, Gainesville, FL, USA.
Department of Forestry, Michigan State University, East Lansing, MI, USA.
ISME J. 2020 Jun;14(6):1396-1409. doi: 10.1038/s41396-020-0614-6. Epub 2020 Feb 19.
Soil microbiomes could play a major role in ecosystem responses to escalating anthropogenic global change. However, we currently have a poor understanding of how soil microbes will respond to interacting global change factors and if responses will be mediated by changes in plant community structure. We used a field experiment to assess changes in soil fungal and bacterial communities in response to plant invasion, experimental drought, and their combination. In addition, we evaluated the relative importance of direct versus indirect pathways of invasion and drought through changes in associated plant communities with structural equation models. We found that fungal communities were interactively structured by invasion and drought, where fungal richness was lowest with invasion under ambient conditions but highest with invasion under drought conditions. Bacterial richness was lower under drought but unaffected by invasion. Changes in the plant community, including lower plant richness and higher root biomass, moderated the direct effects of invasion on microbial richness. Fungal and bacterial functional groups, including pathogens, mutualists, and nitrogen metabolizers, were also influenced by plant community changes. In sum, plant communities mediated the effects of interacting global change drivers on soil microbial community structure, with significant potential consequences for community dynamics and ecosystem functions.
土壤微生物组可能在生态系统对不断加剧的人为全球变化的响应中发挥主要作用。然而,我们目前对于土壤微生物将如何响应相互作用的全球变化因素以及响应是否会受到植物群落结构变化的调节知之甚少。我们使用野外实验来评估土壤真菌和细菌群落对植物入侵、实验性干旱及其组合的响应变化。此外,我们还通过结构方程模型评估了与入侵和干旱相关的植物群落变化的直接和间接途径的相对重要性。我们发现,真菌群落受入侵和干旱的相互作用而结构发生变化,在环境条件下入侵时真菌丰富度最低,但在干旱条件下入侵时最高。细菌丰富度在干旱条件下较低,但不受入侵影响。植物群落的变化,包括植物丰富度降低和根系生物量增加,调节了入侵对微生物丰富度的直接影响。真菌和细菌功能群,包括病原体、共生体和氮代谢物,也受到植物群落变化的影响。总之,植物群落调节了相互作用的全球变化驱动因素对土壤微生物群落结构的影响,这对群落动态和生态系统功能具有重要的潜在影响。