The mechanistic rules for species coexistence
Zhang, Z.; Becks, L.
Show abstract
Global biodiversity loss requires effective ecological community management, reliant on accurate predictions of species coexistence and community assembly1-4. Traditional methods, predicting coexistence from the effect of one species on another5-8 (i.e., phenomenologically), are sensitive to environmental context9-13. This is because they ignore the fundamental processes that can be applied across environments. While mechanistic approaches offer promise14-17, empirical tests remain rare18,19. Here, we integrated a mechanistic consumer-resource model with the growth of 12 phytoplankton species in monoculture over a range of phosphorous, nitrate or ammonium concentrations. We found that the mechanistic approach accurately predicts the composition of 960 communities across species richness and resource conditions. As confirmed by simulations, species competing for substitutable resources (ammonium vs. nitrate) exhibit greater diversity than those competing for essential resources (phosphorus vs. nitrate), especially when initial species richness is high. This is because when competing for essential resources, each species is likely to consume less of the resource that more limit its growth, violating the mechanistic rule of coexistence (each species must consume more of the resource that more limit it16). Our study highlights the power of the mechanistic approach in understanding and predicting species loss across environments and, ultimately, mitigating its pace.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Biomass competition unifies individual and community scaling patterns 97%
- The spatial configuration of biotic interactions shapes coexistence-area relation-ships in an annual plant community 96%
- Community composition of microbial microcosms follows simple assembly rules at evolutionary timescales 96%
Similar papers in this journal
- Competition for fluctuating resources reproduces statistics of species abundance over time across wide-ranging microbiotas 95%
- Emergence of alternative stable states in microbial communities undergoing horizontal gene transfer 94%
- Pleiotropic win-win mutations can rapidly evolve in a nascent cooperative community despite unfavorable conditions 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.