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Baba, Y. G.

Publications and source records attributed to Baba, Y. G..

2 recordsLinked to original sources

Dynamics of interaction networks and species' contributions to community-scale flexibility

Architecture of species interaction networks is a key factor determining stability of ecological communities. However, the fact that ecological network architecture can change through time is often overlooked in discussions on community-level processes despite its theoretical importance. By compiling a time-series community dataset involving 50 spider species and 974 Hexapoda prey species/strains, we quantified the extent to which architecture of predator-prey interaction networks can shift across time points. We then developed a framework for finding species that could promote flexibility of interaction network architecture. Those "network coordinator" species are expected to promote persistence of species-rich ecological communities by buffering perturbations to communities. Although spiders are often considered as generalist predators, contributions to network flexibility varied greatly among species. We also found that detritivorous prey species can be cores of interaction rewiring, dynamically interlinking below-ground and above-ground community dynamics. Analyses of network coordinators will add a new dimension to our understanding of species coexistence mechanisms and provide platforms for systematically prioritizing species in terms of their potential contributions in ecosystem conservation and restoration. Significance StatementLike networks of human relations, webs of interactions between species are dynamically restructured through time. By compiling time-series time-series dataset including > 1,000 species/strains, we quantified the magnitude of ecological network dynamics in the wild. The analytical framework developed in this study highlighted "network coordinator" species, which are keys to conserve and restore endangered ecosystems.

ecology↗

Dynamics of species-rich predator-prey networks and seasonal alternations of keystone species

In nature, entangled webs of predator-prey interactions constitute the backbones of ecosystems. Uncovering the network architecture of such trophic interactions has been recognized as the essential step for exploring species with great impacts on ecosystem-level phenomena and functions. However, it has remained a major challenge to reveal how species-rich networks of predator-prey interactions are continually reshaped though time in the wild. We here show that dynamics of species-rich predator-prey interactions can be characterized by remarkable network structural changes and alternations of potential keystone species. Based on high-throughput detection of prey DNA from 1,556 spider individuals collected in a grassland ecosystem, we reconstructed dynamics of interaction networks involving, in total, 50 spider species and 974 prey species/strains through eight months. The networks were compartmentalized into modules (groups) of closely interacting predators and prey in some but not all months. As the modules differed in detritus/grazing food chain properties, complex fission-fusion dynamics of below-ground and above-ground energy channels was reconstructed across the seasons. The substantial shifts of network structure entailed alternations of spider species located at the core positions within the entangled webs of interactions. These results indicate that knowledge of dynamically shifting food webs is essential for understanding the temporally-varying roles of keystone species that interlink multiple energy channels.

ecology↗