Circuit theory predicts gene flow in plant and animal populations
Top Cited Papers
- 11 December 2007
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 104 (50) , 19885-19890
- https://doi.org/10.1073/pnas.0706568104
Abstract
Maintaining connectivity for broad-scale ecological processes like dispersal and gene flow is essential for conserving endangered species in fragmented landscapes. However, determining which habitats should be set aside to promote connectivity has been difficult because existing models cannot incorporate effects of multiple pathways linking populations. Here, we test an ecological connectivity model that overcomes this obstacle by borrowing from electrical circuit theory. The model vastly improves gene flow predictions because it simultaneously integrates all possible pathways connecting populations. When applied to data from threatened mammal and tree species, the model consistently outperformed conventional gene flow models, revealing that barriers were less important in structuring populations than previously thought. Circuit theory now provides the best-justified method to bridge landscape and genetic data, and holds much promise in ecology, evolution, and conservation planning.Keywords
This publication has 32 references indexed in Scilit:
- Optimizing dispersal and corridor models using landscape geneticsJournal of Applied Ecology, 2007
- Introduction: evaluating and quantifying the conservation dividends of connectivityPublished by Cambridge University Press (CUP) ,2006
- ISOLATION BY RESISTANCEEvolution, 2006
- Streams over mountains: influence of riparian connectivity on gene flow in the Pacific jumping mouse (Zapus trinotatus)Molecular Ecology, 2005
- pathmatrix: a geographical information system tool to compute effective distances among samplesMolecular Ecology Notes, 2004
- Landscape connectivity influences gene flow in a roe deer population inhabiting a fragmented landscape: an individual–based approachMolecular Ecology, 2004
- Ecological and genetic spatial structuring in the Canadian lynxNature, 2003
- Landscape genetics: combining landscape ecology and population geneticsPublished by Elsevier ,2003
- Resistance distanceJournal of Mathematical Chemistry, 1993
- Isolation by Distance in Equilibrium and Non-Equilibrium PopulationsEvolution, 1993