Microbial traits, necromass accumulation, and soil carbon persistence are shaped by oil palm-based agroforestry in the Amazon

Oil palm-based agroforestry systems (AFS) can promote soil organic carbon (SOC) sequestration, but the links among plant richness, microbial communities, and SOC persistence remain only partially understood. Here, using long-term AFS plots and oil palm ( Elaeis guineensis ) monocultures in the Amazon, we show that AFS enhances microbial activity and assembles distinct microbial communities, while selects for contrasting microbial life strategies associated with resource acquisition and growth. These changes are accompanied by increases in particulate (POM-C; up to ∼300% and assumed as more labile) and mineral-associated (MAOM-C; up to ∼200% and assumed to be more persistent) SOC, with effects primarily dependent on plant species composition. Microbial necromass carbon (MNC) accumulation in AFS demonstrated similar increase and it was dominated by fungal necromass (∼64%) vs. bacterial necromass (∼36%). However, the contribution of MNC to SOC was decoupled from increases in MNC contents, accounting for a maximum of ∼27% of the bulk SOC in AFS (while ∼25% in monoculture), challenging the prevailing paradigm that multi-species plant cultivation and high microbial activity are major drivers of MNC contributions to SOC. These findings highlight ecosystem-level interactions as determinants of SOC sequestration and offer the first insights into MNC accumulation pathways in Amazonian agricultural systems.

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Publication Details

Journal
Geoderma
Published
2026-09-12
DOI
https://doi.org/10.1016/j.geoderma.2026.118033
Primary Topic
Oil Palm Production and Sustainability
Type
article
Field-Weighted Citation Impact
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article

Microbial traits, necromass accumulation, and soil carbon persistence are shaped by oil palm-based agroforestry in the Amazon

Fernando Dini Andreote, Alice Ferreira Alves, Felipe Martins do Rêgo Barros, Maurício Roberto Cherubin et al.
Geoderma
Oil Palm Production and Sustainability
article

Microbial traits, necromass accumulation, and soil carbon persistence are shaped by oil palm-based agroforestry in the Amazon

Fernando Dini Andreote, Alice Ferreira Alves, Felipe Martins do Rêgo Barros, Maurício Roberto Cherubin, Valdemar Luiz Tornisielo, Rodrigo Floriano Pimpinato, Kate M. Buckeridge, Carlos Eduardo Pellegrino Cerri, Alberto Vinicius Sousa Rocha, Acácio Tarciso Moreira de Melo
article en

Abstract

Oil palm-based agroforestry systems (AFS) can promote soil organic carbon (SOC) sequestration, but the links among plant richness, microbial communities, and SOC persistence remain only partially understood. Here, using long-term AFS plots and oil palm ( Elaeis guineensis ) monocultures in the Amazon, we show that AFS enhances microbial activity and assembles distinct microbial communities, while selects for contrasting microbial life strategies associated with resource acquisition and growth. These changes are accompanied by increases in particulate (POM-C; up to ∼300% and assumed as more labile) and mineral-associated (MAOM-C; up to ∼200% and assumed to be more persistent) SOC, with effects primarily dependent on plant species composition. Microbial necromass carbon (MNC) accumulation in AFS demonstrated similar increase and it was dominated by fungal necromass (∼64%) vs. bacterial necromass (∼36%). However, the contribution of MNC to SOC was decoupled from increases in MNC contents, accounting for a maximum of ∼27% of the bulk SOC in AFS (while ∼25% in monoculture), challenging the prevailing paradigm that multi-species plant cultivation and high microbial activity are major drivers of MNC contributions to SOC. These findings highlight ecosystem-level interactions as determinants of SOC sequestration and offer the first insights into MNC accumulation pathways in Amazonian agricultural systems.

GeodermaVol. 474
Universidade de São Paulo (BR), Instituto Federal de Educação, Ciência e Tecnologia do Pará (BR), Luxembourg Institute of Science and Technology (LU), Universidade Estadual de Roraima (BR), Universidade Federal de Roraima (BR), Carbon Solutions (United States) (US)
Zero hunger
Openalex Percentile: Top 11%
Oil Palm Production and Sustainability
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