bioRxiv Science⌕ Search

Biology subjects

Cadotte, M. W.

Publications and source records attributed to Cadotte, M. W..

2 recordsLinked to original sources

Response diversity is key to buffer ecosystem productivity against multiple environmental change drivers

Evidence shows that biodiversity promotes primary productivity. However, it is unclear whether such biodiversity-productivity relationships persist under increasing numbers of environmental changes in the current Anthropocene. Here, we use theoretical and experimental approaches to demonstrate that variation in species responses to changing environments determines the ability of ecological communities to maintain productivity under multiple types of environmental change. Our theory shows that this response diversity determines whether biodiversity-productivity relationships are enhanced or impaired by environmental changes. Communities with high response diversity are expected not only to be productive in a particular environment but to maintain that productivity under multiple conditions. Nevertheless, our theory also predicts that such buffering effects fade with increasing negative environmental impacts on communities. Consistent with this prediction, our biodiversity experiment reveals impaired biodiversity-productivity relationships under multiple environmental change drivers with a negative mean impact. Our results suggest that, in the face of growing multiplicity of environmental changes, policies should encourage conservation of local biota, enabling communities to respond to unprecedented environments that may arise.

ecology↗

Partitioning the temporal changes in abundance-based beta diversity into loss and gain components

O_LIEcologists have long recognized that the losses and gains in local species abundances can either decrease or increase spatial beta diversity, phenomena often referred to as biotic homogenization and differentiation, respectively. However, quantifying such dynamic impacts of species abundances on beta diversity has remained a methodological challenge. C_LIO_LIHere, we develop a numerical method to additively partition the temporal changes in beta diversity into distinct components that reflect the losses and gains in local species abundances. Our method is based on Ru[z]i[c]ka and Bray-Curtis indices and the normalized abundance-based Whittakers beta diversity. The temporal changes in these measures are partitioned into components that represent biotic homogenization and differentiation driven by abundance losses and gains at both species and community levels. C_LIO_LIApplication of the method to a Swedish fish community dataset revealed decreases in beta diversity between 1990 and 2018. The homogenization of fish communities was explained by gains, but not losses, in species abundances across sites. Species-level partitioning further showed that the homogenization was largely caused by the increased population sizes of a particular species in sites where it was already present. C_LIO_LIThe results highlight that our partitioning method effectively identifies local population and community processes embedded in regional biodiversity patterns. We believe that explicit analyses of the losses and gains in species abundances should bring deeper insights into the dynamics of beta diversity. C_LI

ecology↗