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Mycorrhizal suppression decouples the coordination of plant functional traits that mediate nitrogen acquisition under different soil water contents in a subtropical wetland ecosystem

湿地 生态系统 农学 生态学 亚热带 氮气循环 固氮 陆地生态系统 土壤生物学 环境科学 生物 氮气 土壤水分 化学 遗传学 有机化学 细菌
作者
Beibei Wang,Chaohe Huangfu,Xuan Jia,Dafeng Hui
出处
期刊:Applied Soil Ecology [Elsevier BV]
卷期号:175: 104441-104441 被引量:7
标识
DOI:10.1016/j.apsoil.2022.104441
摘要

In subtropical wetland ecosystems, climate change can alter both the composition of nitrogen (N) deposition and the levels of soil water, affecting nutrient acquisition. Arbuscular mycorrhizal fungi (AMF) can regulate the effects of soil water availability and the NH 4 + : NO 3 − ratio on plant N acquisition. However, exactly how N acquisition is affected by soil water content and AMF symbiosis remains unclear. We transplanted the dominant wetland species, Carex thunbergii , collected in freshwater wetlands in our study area in southern China, into microcosms in a greenhouse experiment. In this context, we were able to manipulate both the amount of water supply and the NH 4 + : NO 3 − ratio in the soil, combined with and without AMF symbiosis. Three months after our treatments were imposed, we examined N-uptake rate, along with plant growth and functional traits, in response to these experimental manipulations. Soil water content dominated the level of plant growth, whereas variations in plant functional traits (e.g., specific root length, SRL, and specific leaf area, SLA) could largely be ascribed to soil NH 4 + : NO 3 − ratio. Collectively, plant-AMF symbiosis enhanced plant N acquisition under conditions of variable water availability, for instance promoting plant N-uptake rate more at lower level of soil water (30%) compared to higher level of soil water(70%), and also when N was applied at a 3:1 of NH 4 + : NO 3 − ratio compared to other ratios. SLA was significantly negatively correlated with SRL, and thus indirectly contributed to N acquisition. However, mycorrhizal suppression decoupled the coordination between leaf and root traits, mainly affecting SRL, rather than SLA, which remained rather stable. The correlations between root and leaf traits, adjusted by AMF symbiosis, were crucial for plant N use strategies. • Soil water level dominated C. thunbergii growth, whereas functional traits contributed greatly to plant N uptake. • A negative relationship was found between SLA and SRL in response to N supply and water treatments in the presence of AMF. • Mycorrhizal suppression decoupled the coordination between above- and belowground functional traits.
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