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  5. High-resolution soybean tracing for deforestation-free supply chains.

High-resolution soybean tracing for deforestation-free supply chains.

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Resource type
Journal article
Creator (person)
Maor, Roi
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Truszkowski, Jakub
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Ablett, Francesca
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Jennings, Henry
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Walker, Heather
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Dunn, Jessica
Norman, Marigold
Carrasco, Rosario
Jaime-Arteaga, Marysol
Miles-Bunch, Isabella
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Phelan, Lauren
Prior, Lydia
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Antonelli, Alexandre
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Wilkin, Paul
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Saunders, Jade
Deklerck, Victor
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Chater, Caspar C. C.
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Date published
April 13, 2026
Abstract
Soybean farming—providing protein-rich feed for farm animals worldwide—is the third largest driver of tropical deforestation and expanding. Importing economies are considering regulating the trade of soybeans and other deforestation-driving commodities, and trading companies will be required to conduct due diligence to ensure compliance. However, complex supply chains obscure provenance, and origin declarations may be falsified. Here, leveraging Gaussian Process modelling and a georeferenced dataset of isotopic and elemental composition of soybeans from across the main soy growing areas of South America, we identify soybean origin to within 192.52 ( ± 23.51) kilometres from the true harvest location. The average 95% Credible Regions reduces prediction uncertainty to within 3.8% of the area considered for prediction. Our spatially explicit model is a leap forward in commodity traceability, enabling both origin determination and verification of origin claims in true geographical space. Applicable to many commodities, this framework provides transparency regardless of supply-chain complexity, and facilitates effective regulation of commodity supply chains to tackle illegal deforestation.
Project(s)
Priority 2: Trait Diversity and Function
Priority 1: Ecosystem Stewardship
Funder
Funder nameAwards
Vetenskapsrådet, Sweden
(2024-04303)
Stiftelsen för Miljöstrategisk Forskning, Sweden
(Project BioPath)
Kew Development, Royal Botanic Gardens, Kew, United Kingdom
Journal title
Communications Earth & Environment
Volume
7
Article number
310
Publisher
Springer Science and Business Media LLC
Place of publication
Berlin/Heidelberg, Germany
eISSN
2662-4435
Date accepted
February 28, 2026
Official URL
https://doi.org/10.1038/s43247-026-03380-8
Related URL
https://www.nature.com/articles/s43247-026-03380-8
Rights statement
In Copyright
Licence
https://creativecommons.org/licenses/by/4.0/
DOI
10.1038/s43247-026-03380-8
Keywords
Soybean
Sustainable agriculture
Glycine
Supply chains
Glycine max
Ecological modelling
Stable isotope analysis
Additional information
IF = 8.9 (2024)
Managed by the British Library and supported by the AHRC

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