非生物成分
生态学
生物地球化学循环
微生物种群生物学
微生物
环境科学
生态演替
土壤碳
碳循环
土壤生物学
细菌
持久性(不连续性)
碳纤维
生物
土壤有机质
生物成分
微生物食品网
微生物生态学
土壤食物网
土壤微生物学
生态系统
有机质
土壤生态学
环境化学
营养循环
分解
全球变化
化学
自行车
食物网
微生物环
作者
Selina Lepori,Nadja Rohner,Xingqi Li,Xiaojuan Feng,Rota Wagai,Viviana Loaiza,David Sebag,Eric Verrecchia,Daniel B. Nelson,Ansgar Kahmen,Claire Chenu,Pascal A. Niklaus,Anna-Liisa Laine,Luiz A. Domeignoz-Horta
标识
DOI:10.1093/ismeco/ycaf186
摘要
Abstract Multiple global change drivers have caused a large carbon (C) debt in our soils. To remedy this debt, understanding the role of microorganisms in soil C cycling is crucial to tackle the C soil loss. Microbial carbon use efficiency (CUE) is a parameter that captures the formation of microbially-derived soil organic matter (SOM). While it is known that biotic and abiotic drivers influence CUE, it remains unclear whether bacteria, fungi and their interactions influence the formation of microbially-derived SOC and its persistence in soils. Here, we combined the inoculation of distinct communities (a biotic factor) grown at different moisture levels (an abiotic factor) to manipulate the formation of microbial necromass in a model soil. In a follow-up experiment, we then evaluated the persistence of this previously formed microbially-derived C to decomposition. While we show that necromass formation reflects the microbial community composition, the SOC formed within the most complex community of bacteria and fungi seems to be more resistant to decomposition compared to the SOC formed within the simpler communities (bacteria and fungi simple community, bacteria only and fungi only communities). Moreover, fungal necromass proved to be more thermally-stable than bacterial necromass, if this necromass is formed with both bacteria and fungi present. Our findings reveal that although abiotic factors can influence microbial physiology, the biological origin of microbially-derived C and the co-occurrence of fungal and bacterial growth were the stronger drivers explaining SOM persistence in these soils, suggesting the importance of microbial succession in SOC stabilization.
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