Precipitation increase promotes soil organic carbon formation and stability via the mycorrhizal fungal pathway

土壤碳 降水 根际 草原 生物量(生态学) 微生物种群生物学 碳循环 化学 生态系统 全球变化 菌根 农学 土壤有机质 共生 土壤水分 福布 生态学 外生菌根 植物 殖民地化 环境科学 环境化学 生物 土壤生物学 黄土 沉积(地质) 总有机碳 碳纤维 土壤化学 大块土 土壤食物网 自行车 丛枝菌根真菌
作者
Tangqing He,Yunfeng Zhao,Yunfeng Zhao,Xiaodong Wang,Yunpeng Qiu,Jun Deng,Kangcheng Zhang,Xinyu Xu,Yexin Zhao,Yexin Zhao,Kaiyun Qian,Hao Wang,Tongshuo Bai,Yi Zhang,Cheng Feng,Lijin Guo,Huaihai Chen,Liang Guo,Yi Wang,Shuijin Hu
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:122 (48): e2519072122-e2519072122
标识
DOI:10.1073/pnas.2519072122
摘要

Arbuscular mycorrhizal fungi (AMF) form symbiotic relationships with roots of most terrestrial plants, playing a crucial role in regulating soil organic carbon (SOC) dynamics. While precipitation increase (Pi) is a major facet of climate change, its impacts on root- and AMF-mediated SOC formation and stability remain largely unexplored. Here, we combined a meta-analysis across global grasslands with a multiyear precipitation manipulation experiment in a semiarid grassland on the Loess Plateau to disentangle the relative effects of roots and their associated AMF on microbial communities and SOC as influenced by Pi. We show that Pi induced tradeoffs between roots and AMF, and promoted SOC formation and stability via the mycelium- rather than the root-pathway, leading to an increase of 136% (±40) and 297% (±90) in mycelium-derived C and mineral-associated organic C (MAOC), respectively. Pi altered plant community composition, favoring subshrubs and forbs over grasses. Also, Pi reduced specific root length, but increased root diameter, tissue density, and root colonization and extraradical biomass of AMF. Furthermore, Pi-induced change in AMF shifted the soil bacterial community by favoring K-strategists, increasing bacterial necromass C and promoting MAOC accumulation. Our findings provide direct evidence that Pi enhances AMF-driven SOC sequestration by expanding the mycorrhizosphere and promoting microbiota with high C use efficiency, highlighting a key mechanism by which mycorrhizal fungi mediate SOC formation and stability under shifting precipitation regimes.
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