根际
乙烯
矿化(土壤科学)
生物
短小芽孢杆菌
微生物种群生物学
农学
微生物群
生物地球化学循环
植物
土壤微生物学
非生物成分
土壤碳
相对物种丰度
化学
土壤水分
枯草芽孢杆菌
末端限制性片段长度多态性
土壤生物学
土壤pH值
群落结构
细菌
大块土
土壤有机质
微生物
蛋白质组
作者
Xueqing Liu,Jiajie Wang,Yanan Liu,Hongrun Liu,Yushi Zhang,Zhaohu Li,Mingcai Zhang
标识
DOI:10.1021/acs.jafc.6c05425
摘要
Abstract Ethylene modulates plant fitness, but its role in rhizosphere soil multifunctionality remains unclear. This study demonstrates that endogenous ethylene suppresses C- and N-cycling functions while promoting organic P mineralization in the maize rhizosphere, ultimately diminishing the overall soil multifunctionality and attenuating its phenologically driven peak at the tasseling stage. Ethylene reshaped microbial community assembly by enriching opportunistic taxa (e.g., Actinobacteria) while reducing the diversity and relative abundance of sensitive taxa. Community composition (e.g., Bacillus) and α diversity of ethylene-sensitive taxa were negatively correlated with soil multifunctionality. Inoculation with ACC deaminase-producing Bacillus pumilus and Streptomyces gardneri (opportunistic strains) significantly elevated C- and N-cycling enzyme activities and boosted maize growth. However, a direct causal link between ACC deaminase production and these effects requires further experimental validation. Collectively, these findings elucidate that ethylene drives rhizosphere biogeochemical trade-offs through the selective filtering of microbial functional guilds, providing a theoretical foundation for rhizosphere microbiome management in crop production.
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