A theoretical framework for scaling ecological niches from individuals to species
Abstract
The niche is a key concept that unifies ecology and evolutionary biology. However, empirical and theoretical treatments of the niche are mostly performed at the species level, neglecting individuals as important units of ecological and evolutionary processes. So far, a formal mathematical link between individual-level niches and higher organismal-level niches has been lacking, hampering the unification of ecological theories and more accurate forecasts of biodiversity change. To fill in this gap, we propose a bottom–up approach to derive population and higher organismal-level niches from individual niches. We demonstrate the power of our framework by showing that 1) the statistical properties of higher organismal-level niches (e.g., niche breadth, skewness, etc.) can be partitioned into individual contributions and 2) the species-level niche shifts can be estimated by tracing the responses of individuals. By using individual-level GPS (Global Positioning System) tracking data from three different species, we show that climate change could have contrasting consequences on population-level niche shift depending on individual niche compositions. Our method paves the way for a unifying niche theory and enables mechanistic assessments of organism–environment relationships across organismal scales.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (9)
Muyang Lu
Key Laboratory of Bio-Resources and Eco-Environment of Ministry of Education, College of Life Sciences, Sichuan University
Scott W. Yanco
Ecology and Evolutionary Biology, Yale University
Ben S. Carlson
Ecology and Evolutionary Biology, Yale University
Kevin Winner
Ecology and Evolutionary Biology, Yale University
Jeremy M. Cohen
Ecology and Evolutionary Biology, Yale University
Diego Ellis-Soto
Ecology and Evolutionary Biology, Yale University
Shubhi Sharma
Ecology and Evolutionary Biology, Yale University
Will Rogers
Ecology and Evolutionary Biology, Yale University
Walter Jetz