Historical imprints and future shifts: Evolutionary biogeography of Atlantic reef fishes under climate change
Author Identifier (ORCID)
Abstract
Aim: To incorporate phylogenetic relationships into Atlantic marine biogeography, investigating how evolutionary history and environmental conditions interact to shape biodiversity patterns at ocean-basin scales, and to assess how phylogenetic metrics can inform predictions of ecological vulnerability under climate change. Location: Atlantic Ocean. Time Period: Last glacial maximum to 2100. Major Taxa Studied: Reef-associated ray-finned fishes. Methods: We integrated the distributions of 1637 species with detailed phylogenetic information to delineate phylogenetically informed bioregions (“phyloregions”). Using phylogenetic diversity, endemism, and evolutionary distinctiveness, we quantified large-scale evolutionary patterns and applied machine-learning models with climate projections to forecast future changes in biodiversity structure, including alpha- and beta-diversity metrics and thermal niche breadth. Results: We delineated 19 distinct phyloregions, shaped mainly by past isolation and major oceanographic barriers. Evolutionary distinctiveness was highest in temperate transition zones and remote oceanic islands, while tropical regions emerged as hotspots of phylogenetic diversity and endemism. Future climate scenarios indicate rising phylogenetic diversity and endemism in tropical areas, likely reflecting lineage mixing and range shifts, alongside narrowing thermal niche breadths that signal reduced ecological adaptability. Main Conclusions: The delineation of Atlantic phyloregions reveals how evolutionary legacies, historical climatic dynamics, and major oceanographic barriers have shaped reef fish diversity at ocean-basin scales. Temperate transition zones and remote oceanic islands harbour highly distinct evolutionary lineages, while tropical regions concentrate phylogenetic diversity and endemism. Coupling this bioregionalization framework with future climate projections further suggests that warming may reorganize assemblage composition and narrow thermal niche breadths across the Atlantic. Together, these findings provide a scalable framework for integrating evolutionary history into conservation prioritization and improving our understanding of biodiversity dynamics under global change.
Keywords
evolutionary distinctiveness, machine learning, marine ecosystems, phylogenetic diversity, phylogenetic endemism, reef fish ecology, thermal niche breadth
Document Type
Journal Article
Date of Publication
7-1-2026
Article Number
e70259
ISSN
1466822X
Volume
35
Issue
7
Publication Title
Global Ecology and Biogeography
Publisher
Wiley
School
Centre for Marine Ecosystems Research
Funding Information
I.C., L.N. and S.R.F. are supported by the Mission Atlantic project (European Union's Horizon 2020 research and innovation programme under grant agreement #862428). I.C. is supported by the Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES grant #8887.910776/2023-00 and grant #88887.717456/2022-00 for the period at James Cook University, Australia). L.L.L. is funded by the Edith Cowan University PhD scholarship. A.C.S. is funded by the Edith Cowan University Vice Chancellor Research Fellowship. S.R.F. is supported by CNPq research productivity grant (#310906/2023-7).
Copyright
subscription content
Content Type
Metadata only
Recommended Citation
Cord, I., Nunes, L. T., Cowman, P. F., Lutzenkirchen, L. L., Floeter, S. R., & Siqueira, A. C. (2026). Historical imprints and future shifts: Evolutionary biogeography of Atlantic reef fishes under climate change. Global Ecology and Biogeography, 35(7), Article e70259. https://doi.org/10.1111/geb.70259