Global spectrum of leaf nitrogen allocation driven by evolution and environment

Terrestrial carbon uptake under climate change is significantly constrained by nitrogen (N) availability. While plants can alleviate this limitation through flexible leaf N allocation, the global patterns of such partitioning remain poorly understood. Here, by analyzing a global dataset of 520 seed plant species spanning 98 families, we find that plants averagely allocate 38.7% of leaf N to photosynthetic components (including Rubisco, bioenergetics, and light‑capture machinery) and 13.1% to cell walls. The leaf N allocation pattern exhibits a distinct evolutionary shift: early-diverging plants preferentially invest N in cell walls, while recently evolved species allocate more N to photosynthesis. This pattern is fundamentally constrained by evolutionary history and further shaped by recent environmental factors, ultimately leading to a trade-off in leaf N partitioning between photosynthetic components and cell walls. Such a trade-off refines the leaf economics spectrum, demonstrating that conservative-strategy species favor structural investment (cell walls), whereas acquisitive-strategy species prioritize metabolic gain (photosynthesis). These findings suggest that incorporating lineage-specific N allocation strategies can improve projections of global vegetation responses to nutrient limitation and climate change. Plants need nitrogen to absorb CO2, but how this nutrient is allocated among leaf functions remains poorly understood. Analyzing 520 plant species, this study finds a fundamental trade-off in leaf N partitioning between photosynthesis and cell walls, a pattern constrained by deep evolutionary history and modified by environmental factors.

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Publication Details

Journal
Nature Communications
Published
2026-09-04
DOI
https://doi.org/10.1038/s41467-026-77477-1
Primary Topic
Plant Water Relations and Carbon Dynamics
Type
article
Field-Weighted Citation Impact
0.00

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article

Global spectrum of leaf nitrogen allocation driven by evolution and environment

Jianyang Xia, Songbo Tang, Erqian Cui
Nature Communications
Plant Water Relations and Carbon Dynamics
article

Global spectrum of leaf nitrogen allocation driven by evolution and environment

Jianyang Xia, Songbo Tang, Erqian Cui
article en

Abstract

Terrestrial carbon uptake under climate change is significantly constrained by nitrogen (N) availability. While plants can alleviate this limitation through flexible leaf N allocation, the global patterns of such partitioning remain poorly understood. Here, by analyzing a global dataset of 520 seed plant species spanning 98 families, we find that plants averagely allocate 38.7% of leaf N to photosynthetic components (including Rubisco, bioenergetics, and light‑capture machinery) and 13.1% to cell walls. The leaf N allocation pattern exhibits a distinct evolutionary shift: early-diverging plants preferentially invest N in cell walls, while recently evolved species allocate more N to photosynthesis. This pattern is fundamentally constrained by evolutionary history and further shaped by recent environmental factors, ultimately leading to a trade-off in leaf N partitioning between photosynthetic components and cell walls. Such a trade-off refines the leaf economics spectrum, demonstrating that conservative-strategy species favor structural investment (cell walls), whereas acquisitive-strategy species prioritize metabolic gain (photosynthesis). These findings suggest that incorporating lineage-specific N allocation strategies can improve projections of global vegetation responses to nutrient limitation and climate change. Plants need nitrogen to absorb CO2, but how this nutrient is allocated among leaf functions remains poorly understood. Analyzing 520 plant species, this study finds a fundamental trade-off in leaf N partitioning between photosynthesis and cell walls, a pattern constrained by deep evolutionary history and modified by environmental factors.

Nature Communications
East China Normal University (CN)
National Natural Science Foundation of China, Ministry of Education of the People's Republic of China
Climate action
Openalex Percentile: Top 13%
Plant Water Relations and Carbon Dynamics
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Global spectrum of leaf nitrogen allocation driven by evolution and environment — Jianyang Xia, Songbo Tang, et al. · Nature Communications (2026) | TGRS Research Map | TGRS