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Soil microbiome drives the recovery of ecosystem functions after fire

机译:土壤微生物组驱动火灾后的生态系统功能的恢复

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Fire is an ecological disturbance that alters soil microbiomes and the functions they mediate in terrestrial ecosystems. Soil microbial diversity in Mediterranean Basin ecosystems shows resilience to fire following the restoration of plant-soil feedbacks. We hypothesised that microbial functions related to organic matter decomposition and nutrient cycling might show similar patterns of recovery. We quantified the rates of microbial respiration and enzymatic activities related to C, N and P cycling in three 20-year fire chronosequences including 150 transects in 50 burned and unburned plots (no historical fire registers) in a paired experimental design. Microbial functions, except for the hydrolysis of N compounds, were sensitive to fire but recovered the levels of unburned plots in approximately 20-24 years. The recovery of microbial functions responded to abiotic and biotic drivers. Total soil nitrogen concentration was overall strong predictor of microbial functions. In addition, fungal phylogenetic diversity significantly explained the post-fire trajectories of potentially mineralizable C, while bacterial diversity was involved in the restoration of organic C and P hydrolysis. Our results suggest that the long-term recovery of soil biodiversity in Mediterranean Basin ecosystems creates resilience to restore essential ecosystem functions after fire.
机译:火是一种生态障碍,改变了土壤微生物和它们在陆地生态系统中调节的功能。地中海盆地生态系统的土壤微生物多样性显示出植物土反馈恢复后的抗弹性。我们假设与有机物质分解和营养循环相关的微生物功能可能显示出类似的恢复模式。我们量化了与C,N和P循环相关的微生物呼吸和酶活性的速率,包括在配对的实验设计中的50个烧伤和未燃烧的图(无历史火寄存器)中的150次横断面。除了N化合物的水解外的微生物功能对火敏感,但在大约20-24岁的情况下恢复未燃烧的地块水平。微生物功能的恢复响应非生物和生物司机。土壤氮浓度总体氮浓度是微生物功能的总体强的预测因子。此外,真菌系统发育多样性显着解释了潜在的矿化后C的火灾后轨迹,而细菌多样性涉及有机C和P水解的恢复。我们的研究结果表明,地中海盆地生态系统的土壤生物多样性的长期回收造成了恢复火灾后恢复基本生态系统功能的恢复力。

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