High-order interactions distort the functional landscape of microbial consortia
Взаимодействия высокого порядка искажают функциональный ландшафт микробных консорциумов
2019-12-12
SCID: 54.1/bswazvq2
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amylolytic ratefunctional landscapehigh-order interactionsmicrobial consortiasynthetic consortia
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Abstract (AI)
Understanding the link between community composition and function is a major challenge in microbial population biology, with implications for the management of natural microbiomes and the design of synthetic consortia. Specifically, it is poorly understood whether community functions can be quantitatively predicted from traits of species in monoculture. Inspired by the study of complex genetic interactions, we have examined how the amylolytic rate of combinatorial assemblages of six starch-degrading soil bacteria depend on the separate functional contributions from each species and their interactions. Filtering our results through the theory of biochemical kinetics, we show that this simple function is additive in the absence of interactions among community members. For about half of the combinatorially assembled consortia, the amylolytic function is dominated by pairwise and higher-order interactions. For the other half, the function is additive despite the presence of strong competitive interactions. We explain the mechanistic basis of these findings and propose a quantitative framework that allows us to separate the effect of behavioral and population dynamics interactions. Our results suggest that the functional robustness of a consortium to pairwise and higher-order interactions critically affects our ability to predict and bottom-up engineer ecosystem function in complex communities.
Key Findings
1
A quantitative framework separates the effects of behavioral interactions from population-dynamics interactions.
2
Approximately half of combinatorially assembled consortia have amylolytic function dominated by pairwise and higher-order interactions.
3
Biochemical kinetics shows that consortium amylolytic function is additive when community members do not interact.
4
Consortium robustness to pairwise and higher-order interactions determines how reliably ecosystem function can be predicted and engineered from monoculture traits.
5
The remaining consortia maintain additive function despite strong competitive interactions among species.
Research Object
combinatorial assemblages of six starch-degrading soil bacteria (microbial consortia)
Research Subject
the effects of pairwise and higher-order species interactions on consortium amylolytic function and its additivity, predictability, and robustness
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2019-12-12
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