Cross-feeding enables robust coexistence between four bacterial species

Resource supply is generally considered a dominant driver of microbial diversity. Here, using a four-species bacterial consortium, we asked whether coexistence can emerge from interactions between species rather than being dictated by the external environment. Across 31 simple nutrient conditions, including 16 single-resource environments, all four species survived and coexisted over eight growth-and-dilution cycles. We then chose 28 additional conditions to further probe the boundaries of coexistence by varying resource concentrations, temporal dynamics, nutrient complexity and relief of auxotrophy-driven dependencies, and only observed the extinction of a single species in one of these conditions. Although the community composition in each environment was largely shaped by species' fitness on the supplied resources, experimental assays and consumer-resource modeling showed that the coexistence was explained by cross-feeding and niche partitioning of metabolic byproducts. These metabolic interactions were strong enough to sustain coexistence even for species that failed to exhibit significant growth on the supplied resources in monoculture. Furthermore, robust coexistence across environments appears to be an emergent property of the community itself, ingrained in the members' metabolic byproduct profiles and niche differences. These findings demonstrate that the richness of microbial consortia is ultimately governed by these intrinsic metabolic traits, rather than being strictly dictated by the number or identity of the externally supplied resource.

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Publication Details

Journal
Proceedings of the National Academy of Sciences
Published
2026-09-17
DOI
https://doi.org/10.1073/pnas.2607664123
Primary Topic
Microbial Community Ecology and Physiology
Type
article
Field-Weighted Citation Impact
0.00

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article

Cross-feeding enables robust coexistence between four bacterial species

Snorre Sulheim, Eric Ulrich, Miguel Teixeira, Sara Mitri et al.
Proceedings of the National Academy of Sciences
Microbial Community Ecology and Physiology
article

Cross-feeding enables robust coexistence between four bacterial species

Snorre Sulheim, Eric Ulrich, Miguel Teixeira, Sara Mitri, Samuele Testa, Prajwal Padmanabha, Alisson Gillon, Daniel Machado
article en

Abstract

Resource supply is generally considered a dominant driver of microbial diversity. Here, using a four-species bacterial consortium, we asked whether coexistence can emerge from interactions between species rather than being dictated by the external environment. Across 31 simple nutrient conditions, including 16 single-resource environments, all four species survived and coexisted over eight growth-and-dilution cycles. We then chose 28 additional conditions to further probe the boundaries of coexistence by varying resource concentrations, temporal dynamics, nutrient complexity and relief of auxotrophy-driven dependencies, and only observed the extinction of a single species in one of these conditions. Although the community composition in each environment was largely shaped by species' fitness on the supplied resources, experimental assays and consumer-resource modeling showed that the coexistence was explained by cross-feeding and niche partitioning of metabolic byproducts. These metabolic interactions were strong enough to sustain coexistence even for species that failed to exhibit significant growth on the supplied resources in monoculture. Furthermore, robust coexistence across environments appears to be an emergent property of the community itself, ingrained in the members' metabolic byproduct profiles and niche differences. These findings demonstrate that the richness of microbial consortia is ultimately governed by these intrinsic metabolic traits, rather than being strictly dictated by the number or identity of the externally supplied resource.

Proceedings of the National Academy of SciencesVol. 123(38)
Norwegian University of Science and Technology (NO), University of Lausanne (CH)
Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung
Openalex Percentile: Top 11%
Microbial Community Ecology and Physiology
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