TY - JOUR
T1 - Global Phosphorus Enrichment Reshapes Terrestrial Phosphorus Cycling
AU - Chen, Zixin
AU - Dong, Kai
AU - Helfenstein, Julian
AU - Hui, Dafeng
AU - Zohner, Constantin M.
AU - Hagedorn, Frank
AU - Delgado-Baquerizo, Manuel
AU - Martin, Adam R.
AU - Feng, Jiguang
AU - Yang, Nan
AU - Chen, Xinli
AU - Augusto, Laurent
AU - Deng, Qi
AU - Hou, Enqing
AU - Jiang, Mingkai
AU - Yu, Qingshui
AU - Shen, Haihua
AU - Sardans, Jordi
AU - Penuelas, Josep
AU - Lambers, Hans
AU - Fang, Jingyun
AU - Yan, Zhengbing
N1 - © 2026 John Wiley & Sons Ltd.
PY - 2026/4
Y1 - 2026/4
N2 - Anthropogenic phosphorus (P) inputs are rapidly altering terrestrial P cycling through plant - soil - microbial interactions; however, global patterns and underlying mechanisms driving these changes remain poorly understood. By performing a global meta-analysis of 1315 observations from 176 studies across diverse natural terrestrial ecosystems, we found that P addition increased P concentrations in foliage, stems, roots, and litter by 62%, 114%, 100% and 63%, respectively. Soil total P, plant-available P, and microbial P concentrations rose by 43%, 221%, and 70%, while leaf P-resorption efficiency and soil phosphatase activity declined by 23% and 15%, respectively. Stem P and soil phosphatase activity exhibited consistent trends across tropical, temperate, and boreal zones, suggesting climate-specific P acquisition strategies. In addition, foliar P responses diverged among ecosystem and plant functional types. These responses were primarily regulated by background soil total P concentration, precipitation, soil pH, and P addition duration and rate. Our findings provide critical insights into the potential consequences of increasing anthropogenic P inputs in natural terrestrial ecosystems, improving our understanding of nutrient cycling and informing future ecosystem management under ongoing global change.
AB - Anthropogenic phosphorus (P) inputs are rapidly altering terrestrial P cycling through plant - soil - microbial interactions; however, global patterns and underlying mechanisms driving these changes remain poorly understood. By performing a global meta-analysis of 1315 observations from 176 studies across diverse natural terrestrial ecosystems, we found that P addition increased P concentrations in foliage, stems, roots, and litter by 62%, 114%, 100% and 63%, respectively. Soil total P, plant-available P, and microbial P concentrations rose by 43%, 221%, and 70%, while leaf P-resorption efficiency and soil phosphatase activity declined by 23% and 15%, respectively. Stem P and soil phosphatase activity exhibited consistent trends across tropical, temperate, and boreal zones, suggesting climate-specific P acquisition strategies. In addition, foliar P responses diverged among ecosystem and plant functional types. These responses were primarily regulated by background soil total P concentration, precipitation, soil pH, and P addition duration and rate. Our findings provide critical insights into the potential consequences of increasing anthropogenic P inputs in natural terrestrial ecosystems, improving our understanding of nutrient cycling and informing future ecosystem management under ongoing global change.
KW - Phosphorus cycling
KW - Phosphorus enrichment
KW - Plant - soil - microbial continnum
KW - Terrestrial ecosystems
UR - https://www.scopus.com/pages/publications/105034817645
UR - https://www.webofscience.com/api/gateway?GWVersion=2&SrcApp=uwapure5-25&SrcAuth=WosAPI&KeyUT=WOS:001730695700001&DestLinkType=FullRecord&DestApp=WOS_CPL
U2 - 10.1111/gcb.70827
DO - 10.1111/gcb.70827
M3 - Article
C2 - 41923270
SN - 1354-1013
VL - 32
JO - Global Change Biology
JF - Global Change Biology
IS - 4
M1 - e70827
ER -