自行车
磷
营养循环
生物量(生态学)
分解
土壤有机质
限制
有机质
农学
土壤水分
环境化学
营养物
环境科学
化学
生物
生态学
土壤科学
林业
工程类
有机化学
机械工程
地理
作者
Laura Castañeda‐Gómez,Jeff R. Powell,Elise Pendall,Yolima Carrillo
出处
期刊:
[Cold Spring Harbor Laboratory]
日期:2021-07-18
标识
DOI:10.1101/2021.07.16.452715
摘要
Abstract Enhanced soil organic matter (SOM) decomposition and organic phosphorus (P) cycling may help sustain plant productivity under elevated CO 2 (eCO 2 ) and P-limiting conditions. P-acquisition by arbuscular mycorrhizal (AM) fungi and their impacts on SOM decomposition may become even more relevant in these conditions. Yet, experimental evidence of the interactive effect of AM fungi and P availability influencing altered SOM cycling under eCO 2 is scarce and the mechanisms of this control are poorly understood. Here, we performed a pot experiment manipulating P availability, AM fungal presence and atmospheric CO 2 levels and assessed their impacts on soil C cycling and plant growth. Plants were grown in chambers with a continuous 13 C-input that allowed differentiation between plant- and SOM-derived fractions of respired CO 2 (R), dissolved organic C (DOC) and microbial biomass (MBC) as relevant C pools in the soil C cycle. We hypothesised that under low P availability, increases in SOM cycling may support sustained plant growth under eCO 2 and that AM fungi would intensify this effect. We found the impacts of CO 2 enrichment and P availability on soil C cycling were generally independent of each other with higher root biomass and slight increases in soil C cycling under eCO 2 occurring regardless of the P treatment. Contrary to our hypotheses, soil C cycling was enhanced with P addition suggesting that low P conditions were limiting soil C cycling. eCO 2 conditions increased the fraction of SOM-derived DOC pointing to increased SOM decomposition with eCO 2 . Finally, AM fungi increased microbial biomass under eCO 2 conditions and low-P without enhanced soil C cycling, probably due to competitive interactions with free-living microorganisms over nutrients. Our findings in this plant-soil system suggest that, contrary to what has been reported for N-limited systems, the impacts of eCO 2 and P availability on soil C cycling are independent of each other.
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