微观世界
富营养化
环境科学
生态系统
营养循环
全球变暖
生物地球化学循环
水槽(地理)
微生物种群生物学
气候变化
生态学
环境化学
化学
生物
细菌
营养物
遗传学
地图学
地理
作者
Chengchao Liao,Lu Li,Min Deng,Kang Song,Fengchang Wu
标识
DOI:10.1021/acs.est.5c03331
摘要
Climate warming and eutrophication reshape nitrogen cycling in lakes, yet their combined impacts on lacustrine N 2 O source-sink dynamics and underlying microbial drivers remain poorly resolved. Here, a controlled microcosm experiment was constructed to explore the interaction and microbial mechanism of warming (+4 °C) and nutrient enrichment (low, middle, and high nutrient gradients) to N 2 O emissions. We demonstrate that, compared to warming or eutrophication alone, their synergistic interaction amplified N 2 O flux by 100-fold and 3.5-fold, respectively. Nutrient loading exerts a dominant control over the regulation of N 2 O dynamics, surpassing that of warming. Mechanistically, eutrophication elevates substrate availability, while warming enhances microbial utilization thresholds, synergistically escalating N 2 O emissions. Microbial analyses reveal that nutrient enrichment increases ( nirK + nirS )/ nosZ and amoA abundance, whereas warming stimulates microbial enzyme activity. These dual stressors collaboratively reshape the microbial community structure, accelerating N 2 O metabolic rates. In addition, thermal stimulation enhances the gas diffusion coefficient and accelerates the release of N 2 O from the aqueous phase. Warming could cause the N 2 O emissions shift from a unimodal nonlinear pattern to linearity with elevated eutrophic level. Our findings establish a mechanistic framework linking climate-nutrient interactions to microbial N-cycling, providing critical insights for predicting and mitigating lacustrine N 2 O emissions in warming ecosystems. Warming shifts lake N 2 O emissions from nonlinear to linear patterns with increased nutrient levels via microbial dynamics, informing nutrient management for climate-resilient waters.
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