Physiology is a hidden dimension of diversity in the radiation of woodland salamanders

N Nathalie M. Alomar (Department of Ecology and Evolutionary Biology, Yale University) H Henry Camarillo (Department of Ecology and Evolutionary Biology, Yale University) E Edward D. Burress (Department of Biological Sciences, University of Alabama) J Julia Laterza-Barbosa (Department of Ecology and Evolutionary Biology, Yale University) M Meaghan R. Gade (Association for Fish and Wildlife Agencies) S Saúl F. Domínguez-Guerrero (Department of Ecology and Evolutionary Biology, Yale University) I Isabela Hernández-Rodríguez (Department of Ecology and Evolutionary Biology, Yale University) L Laura R. V. Alencar (Department of Ecology and Evolutionary Biology, Yale University) B Brooke L. Bodensteiner (Department of Biological Sciences, University of Alabama) I Isabella J. Burger (Department of Biology, University of North Carolina at Chapel Hill) E Eric A. Riddell (Department of Biology, University of North Carolina at Chapel Hill) M Martha M. Muñoz (Department of Ecology and Evolutionary Biology, Yale University)

Abstract

Morphological evolution can be explosive, producing visually spectacular adaptive radiations like Caribbean anoles, Malagasy vangas, and African Rift Lake cichlids. Yet morphological stasis, the long-term retention of a conserved body plan, is often observed across evolutionary radiations. Woodland salamanders ( Plethodon ) are a classic example of such “nonadaptive” radiation, characterized by prolific speciation alongside morphological stasis (i.e., limited morphological divergence), often attributed to phylogenetic conservatism in their climatic and microhabitat niches. However, the multidimensional nature of phenotypes and the niche means that adaptive evolution in less apparent traits can occur even when morphology appears static. We investigated whether woodland salamanders exhibit adaptive divergence in a less conspicuous phenotypic axis—specifically, physiology—and compared patterns and rates of trait evolution to those of morphological traits. We found that most physiological traits are associated with climatic variation and exhibit elevated rates of evolution, high trait disparity, and more frequent shifts in adaptive optima than morphological traits. In particular, skin resistance to water loss, metabolic rate, and cold tolerance exhibit evolutionary signatures of adaptive radiation. Notably, morphology is not entirely static: Some traits show climatic associations, several exhibit localized shifts, and evolutionary rates exceed those of slower evolving physiological traits, such as heat tolerance. Biological systems, as evidenced by woodland salamanders, are not exclusively “conserved” or “labile” in their evolution, and this system illustrates how the same features that limit morphological divergence may also facilitate physiological evolution. Woodland salamanders exemplify how adaptive radiation can proceed despite outward similarity.

Article Details

Volume / Issue Vol. 123, Issue 26
Published June 30, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

N

Nathalie M. Alomar

Department of Ecology and Evolutionary Biology, Yale University

H

Henry Camarillo

Department of Ecology and Evolutionary Biology, Yale University

E

Edward D. Burress

Department of Biological Sciences, University of Alabama

J

Julia Laterza-Barbosa

Department of Ecology and Evolutionary Biology, Yale University

M

Meaghan R. Gade

Association for Fish and Wildlife Agencies

S

Saúl F. Domínguez-Guerrero

Department of Ecology and Evolutionary Biology, Yale University

I

Isabela Hernández-Rodríguez

Department of Ecology and Evolutionary Biology, Yale University

L

Laura R. V. Alencar

Department of Ecology and Evolutionary Biology, Yale University

B

Brooke L. Bodensteiner

Department of Biological Sciences, University of Alabama

I

Isabella J. Burger

Department of Biology, University of North Carolina at Chapel Hill

E

Eric A. Riddell

Department of Biology, University of North Carolina at Chapel Hill

M

Martha M. Muñoz

Department of Ecology and Evolutionary Biology, Yale University