Multigene phylogeny of the Mustelidae: Resolving relationships, tempo and biogeographic history of a mammalian adaptive radiation

Мультилокусная филогения Mustelidae: выяснение родственных связей, темпов и биогеографической истории адаптивной радиации млекопитающих
Klaus‐Peter Koepfli, Kerry A Deere, Graham J. Slater, Colleen Begg, Keith S. Begg, Lon I. Grassman, Mauro Lucherini, Géraldine Veron, Robert K. Wayne
2008-02-14

Bayesian divergence datingMustelidae phylogenyadaptive radiationbiogeographic historymultigene phylogeny
BACKGROUND: Adaptive radiation, the evolution of ecological and phenotypic diversity from a common ancestor, is a central concept in evolutionary biology and characterizes the evolutionary histories of many groups of organisms. One such group is the Mustelidae, the most species-rich family within the mammalian order Carnivora, encompassing 59 species classified into 22 genera. Extant mustelids display extensive ecomorphological diversity, with different lineages having evolved into an array of adaptive zones, from fossorial badgers to semi-aquatic otters. Mustelids are also widely distributed, with multiple genera found on different continents. As with other groups that have undergone adaptive radiation, resolving the phylogenetic history of mustelids presents a number of challenges because ecomorphological convergence may potentially confound morphologically based phylogenetic inferences, and because adaptive radiations often include one or more periods of rapid cladogenesis that require a large amount of data to resolve. RESULTS: We constructed a nearly complete generic-level phylogeny of the Mustelidae using a data matrix comprising 22 gene segments (approximately 12,000 base pairs) analyzed with maximum parsimony, maximum likelihood and Bayesian inference methods. We show that mustelids are consistently resolved with high nodal support into four major clades and three monotypic lineages. Using Bayesian dating techniques, we provide evidence that mustelids underwent two bursts of diversification that coincide with major paleoenvironmental and biotic changes that occurred during the Neogene and correspond with similar bursts of cladogenesis in other vertebrate groups. Biogeographical analyses indicate that most of the extant diversity of mustelids originated in Eurasia and mustelids have colonized Africa, North America and South America on multiple occasions. CONCLUSION: Combined with information from the fossil record, our phylogenetic and dating analyses suggest that mustelid diversification may have been spurred by a combination of faunal turnover events and diversification at lower trophic levels, ultimately caused by climatically driven environmental changes. Our biogeographic analyses show Eurasia as the center of origin of mustelid diversity and that mustelids in Africa, North America and South America have been assembled over time largely via dispersal, which has important implications for understanding the ecology of mustelid communities.
1
A nearly complete generic-level mustelid phylogeny was reconstructed using 22 gene segments totaling approximately 12,000 base pairs.
2
Bayesian divergence dating indicates two major bursts of mustelid diversification coinciding with significant Neogene paleoenvironmental and biotic changes.
3
Maximum parsimony, maximum likelihood, and Bayesian analyses consistently resolved mustelids into four major clades and three monotypic lineages with high nodal support.
4
Most extant mustelid diversity originated in Eurasia, followed by multiple independent colonizations of Africa, North America, and South America.
5
The study links mustelid diversification dynamics with similar bursts of cladogenesis observed in other vertebrate groups.

Mustelidae (the weasel family), including its 59 extant species across 22 genera

The phylogenetic relationships, diversification tempo, and biogeographic history of mustelids during their adaptive radiation

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2008-02-14
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Klaus‐Peter Koepfli
Kerry A Deere
Graham J. Slater
Colleen Begg
Keith S. Begg
Lon I. Grassman
Mauro Lucherini
Géraldine Veron
Robert K. Wayne
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