A mechanistic niche model for measuring species' distributional responses to seasonal temperature gradients

PLoS One. 2009 Nov 20;4(11):e7921. doi: 10.1371/journal.pone.0007921.

Abstract

Niche theory is central to understanding how species respond geographically to climate change. It defines a species' realized niche in a biological community, its fundamental niche as determined by physiology, and its potential niche--the fundamental niche in a given environment or geographic space. However, most predictions of the effects of climate change on species' distributions are limited to correlative models of the realized niche, which assume that species are in distributional equilibrium with respect to the variables or gradients included in the model. Here, I present a mechanistic niche model that measures species' responses to major seasonal temperature gradients that interact with the physiology of the organism. I then use lethal physiological temperatures to parameterize the model for bird species in North and South America and show that most focal bird species are not in direct physiological equilibrium with the gradients. Results also show that most focal bird species possess broad thermal tolerances encompassing novel climates that could become available with climate change. I conclude with discussion of how mechanistic niche models may be used to (i) gain insights into the processes that cause species to respond to climate change and (ii) build more accurate correlative distribution models in birds and other species.

MeSH terms

  • Animal Migration
  • Animals
  • Biodiversity
  • Birds / physiology*
  • Climate Change*
  • Climate*
  • Ecosystem
  • Environment
  • Geography
  • Greenhouse Effect
  • Models, Biological
  • Population Dynamics
  • Seasons
  • Temperature