硝化作用
生态系统
环境科学
农学
生产力
铵
氮气
基质(水族馆)
人类受精
环境化学
人口
氮气循环
土壤酸化
化学
生态学
土壤pH值
土壤微生物学
陆地生态系统
土壤科学
土壤肥力
丰度(生态学)
土壤水分
作者
Liangping Wu,Yuanyuan Huang,Yuanyuan Huang,Jing Wang,Lu Lu,Yves Uwiragiye,Meiqi Chen,Quan Tang,Nyumah Fallah,Zihan Liu,Hang Jing,Ahmed S. Elrys,Yinfei Qian,Yi Cheng,Zucong Cai,Scott X. Chang,Minggang Xu,Christoph Müller
标识
DOI:10.1038/s41467-026-76609-x
摘要
Nitrogen (N) fertilization supports nearly half of the global population but disrupts the N cycle. While N addition is assumed to stimulate soil nitrification by increasing substrate supply and nitrifier activity, it may also inhibit nitrification via soil acidification. Resolving this paradox is key to understanding the nitrification response to N addition (βnit). Using a global dataset, we show that βnit is best explained by final soil pH and ecosystem type. The βnit-pH relationship is positive in croplands, weak in forests, and negative in grasslands. Notably, βnit shifts from negative to positive above a pH threshold of 5.7 in croplands. Structural equation modeling reveals that final pH affects βnit in croplands by altering ammonia-oxidizing bacteria abundance and ammonium concentration in response to N addition. Our findings underscore the critical role of pH in regulating βnit and improving predictions of ecosystem N dynamics and plant productivity under future N inputs. Nitrogen addition affects nitrification through both substrate supply and soil acidification. This study finds the response is driven mainly by soil pH and ecosystem type: positive in croplands, weak in forests, negative in grasslands, with a cropland pH threshold of 5.7.
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