- By:
- Menge, Duncan; Reis, Carla; Perakis, Steven; Giesbrecht, Sian; Cleveland, Cory; Reed, Sasha; Taylor, Benton; Batterman, Sarah; Crews, Timothy; Dynarski, Katherine; Funk, Jennifer; Gei, Maga; Griffin, Kevin; Gundale, Michael; Herridge, David; Jovan, Sarah; Peoples, Mark; Piipponen, Johannes; Caballero, Emilio; Salmon, Verity G; Soper, Fiona; Staccone, Anika; Weber, Bettina; Wolf, Amelia; Wurzburger, Nina
- Journal Name:
- Global Biogeochemical Cycles
- Page Number:
- 1-23
- Volume:
- 40
- Issue Number:
- 8
- Publication Date:
- September 21, 2026
- View DOI Listing:
- https://doi.org/10.1029/2026GB009098
Abstract
Biological nitrogen (N) fixation (BNF) provides the N needed to produce proteins and other biological building blocks, helping feed humanity and mitigate climate change. Due to its high energetic cost compared to other forms of N acquisition, biotic investment in BNF indicates N limitation. Globally gridded BNF flux data provide an opportunity to determine the energetic investment in BNF across ecosystems, which would help reconcile conflicting indicators of N limitation. Here, we use a new BNF synthesis to quantify the relative importance of BNF in different N-fixing niches, in different biomes, and across the globe by calculating the fraction of net primary productivity (NPP) invested in BNF and the fraction of plant N acquisition provided by BNF. Larger fractions of non-agricultural NPP were invested in BNF in less-productive, higher-latitude biomes. This pattern was driven by biocrusts and mosses. Similarly, non-agricultural symbiotic N-fixing plants invested relatively more of their own NPP in BNF in less-productive, higher-latitude biomes. This symbiotic plant pattern was driven by shrubs and herbs, overriding the opposite pattern in trees. Symbiotic plants also acquired a higher fraction of their N from BNF at higher latitudes and in less productive biomes. Investments in symbiotic BNF were 10× higher in agricultural (2.9% of NPP) versus natural (0.29%) biomes, providing 26% versus 3.1% of ecosystem-scale plant N acquisition. These results support the paradigm of strong N limitation at higher latitudes, help understand the rarity of N-fixing trees at higher latitudes, underscore the dominance of human activity, and inform terrestrial biosphere models.