Global distribution and drivers of relative contributions among soil nitrogen sources to terrestrial plants.

Hu, Chao-Chen; Liu, Xue-Yan; Driscoll, Avery W; Kuang, Yuan-Wen; Brookshire, E N Jack; Lü, Xiao-Tao; Chen, Chong-Juan; Song, Wei et al. · Nat Commun · 2024

basic_science · Level V

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Abstract

Soil extractable nitrate, ammonium, and organic nitrogen (N) are essential N sources supporting primary productivity and regulating species composition of terrestrial plants. However, it remains unclear how plants utilize these N sources and how surface-earth environments regulate plant N utilization. Here, we establish a framework to analyze observational data of natural N isotopes in plants and soils globally, we quantify fractional contributions of soil nitrate (f<sub>NO3-</sub>), ammonium (f<sub>NH4+</sub>), and organic N (f<sub>EON</sub>) to plant-used N in soils. We find that mean annual temperature (MAT), not mean annual precipitation or atmospheric N deposition, regulates global variations of f<sub>NO3-</sub>, f<sub>NH4+</sub>, and f<sub>EON</sub>. The f<sub>NO3-</sub> increases with MAT, reaching 46% at 28.5 °C. The f<sub>NH4+</sub> also increases with MAT, achieving a maximum of 46% at 14.4 °C, showing a decline as temperatures further increase. Meanwhile, the f<sub>EON</sub> gradually decreases with MAT, stabilizing at about 20% when the MAT exceeds 15 °C. These results clarify global plant N-use patterns and reveal temperature rather than human N loading as a key regulator, which should be considered in evaluating influences of global changes on terrestrial ecosystems.

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