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A history of diversification, extinction, and invasion in tropical America as derived from species-level phylogenies of chionine genera (Family Veneridae)

Published online by Cambridge University Press:  05 October 2021

Peter D. Roopnarine*
Affiliation:
Department of Invertebrate Zoology and Geology, California Academy of Sciences, Golden Gate Park, San Francisco, 94118-4599,

Abstract

Phylogenetic reconstructions of two tropical American venerid genera, Chione and Chionopsis (subfamily Chioninae) were attempted at the species-level. The purposes of the analyses were to provide historical reconstructions of origination and extinction events in the two clades, as well as patterns of invasion and diversification. The analyses were based entirely on conchological characters to facilitate the inclusion of a substantial number of fossil taxa, but difficulties were encountered due to the quality of preservation and availability of material. Nevertheless the two genera were established as monophyletic clades, and the reconstructions yielded considerable insight into their histories in tropical America. The analyses suggest that both genera originated in the tropical western Atlantic, Chionopsis by at least the early Oligocene, and Chione in the early Miocene. Various branches of both genera subsequently invaded the tropical eastern Pacific several times prior to Seaway closure, with only one possible reciprocal invasion of the western Atlantic. Pliocene extinction affected both genera more significantly in the western Atlantic relative to the eastern Pacific, and diversity is higher today in the latter region. These conclusions are not entirely consistent with the fossil records of the genera, but this incongruency highlights the need for much more extensive sampling of the eastern Pacific Cenozoic record.

Type
Reprinted Articles
Copyright
Copyright © The Paleontological Society

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References

Allmon, W. D., Rosenberg, G., Portell, R. W., and Schindler, K. S. 1993. Diversity of Atlantic Coastal Plain mollusks since the Pliocene. Science, 260:16261629.CrossRefGoogle ScholarPubMed
Allmon, W. D., Rosenberg, G., Portell, R. W., and Schindler, K. 1996. Diversity of Pliocene-Recent mollusks in the western Atlantic: Extinction, origination, and environmental change, p. 271302. In Jackson, J. B. C., Budd, A. F., and Coates, A. G. (eds.), Evolution and Environment in Tropical America. The University of Chicago Press, Chicago.Google Scholar
Budd, A. F., Johnson, K. G., and Stemann, T. A. 1996. Plio-Pleistocene Turnover and Extinctions in the Caribbean Reef-Coral Fauna, p. 168204. In Jackson, J. B. C., Budd, A. F., and Coates, A. G. (eds.), Evolution and Environment in Tropical America. The University of Chicago Press, Chicago.Google Scholar
Budd, A. F., Stemann, T. A., and Johnson, K. G. 1994. Stratigraphic distributions of genera and species of Neogene to Recent Caribbean reef corals. Journal of Paleontology, 68:951977.CrossRefGoogle Scholar
Coates, A. G., and Obando, J. A. 1996. The geologic evolution of the Central American Isthmus, p. 2156. In Jackson, J. B. C., Budd, A. F., and Coates, A. G. (eds.), Evolution and Environment in Tropical America. The University of Chicago Press, Chicago.Google Scholar
Collins, L. S. 1996. Environmental Changes in Caribbean Shallow Waters Relative to the Closing Tropical American Seaway, p. 130167. In Jackson, J. B. C., Budd, A. F., and Coates, A. G. (eds.), Evolution and Environment in Tropical America. The University of Chicago Press, Chicago.Google Scholar
Cronin, T. M., and Dowsett, H. J. 1996. Biotic and Oceanographic Response to the Pliocene Closing of the Central American Isthmus, p. 76104. In Jackson, J. B. C., Budd, A. F., and Coates, A. G. (eds.), Evolution and Environment in Tropical America. The University of Chicago Press, Chicago.Google Scholar
Duque-Caro, H. 1990. Neogene stratigraphy, palaeoceanography na palaeobiogeography in northwest South America and the evolution of the Panama Seaway. Palaeogeography, Palaeoclimatology, Palaeoecology, 777:203234.CrossRefGoogle Scholar
Fischer-Piette, E., and Vukadinovic, D. 1977. Suite des revisions des Veneridae (mollusques lamellibranches) Chioninae, Samaranginae et complement aux Venus. Memoires du Muséum National d'Histoire Naturelle (A), 106:5186.Google Scholar
Foote, M. 1997. Estimating taxonomic durations and preservation probability. Paleobiology, 23:278300.CrossRefGoogle Scholar
Fortunato, H. 1998. Reconciling observed patterns of temporal occurrence with cladistic hypotheses of phylogenetic relationship. American Malacological Bulletin, 14:191200.Google Scholar
Jackson, J. B. C., and Cheetham, A. H. 1994. Phytogeny reconstruction and the tempo of speciation in cheilostome Bryozoa. Paleobiology, 20:407423.CrossRefGoogle Scholar
Jackson, J. B. C., Jung, P., Coates, A. G., and Collins, L. S. 1993. Diversity and extinction of tropical American mollusks and emergence of the Isthmus of Panama. Science, 260:16241626.CrossRefGoogle ScholarPubMed
Jackson, J. B. C., Todd, J. A., Fortunato, H., and Jung, P. 1999. Diversity and assemblages of Neogene Caribbean Mollusca of lower Central America, p. 193230. In Collins, L. S. and Coates, A. G. (eds.), A Paleobiotic Survey of Caribbean Faunas from the Neogene of the Isthmus of Panama. Bulletins of American Paleontology, 357.Google Scholar
Jones, D. S., and Allmon, W. D. 1995. Records of upwelling, seasonality, and growth in stable isotope profiles of Pliocene mollusk shells from Florida. Lethaia, 28:6174.CrossRefGoogle Scholar
Keen, A. M. 1971. Sea Shells of Tropical West America. Stanford University Press, Stanford, California, 1064 p.Google Scholar
Marincovich, L. J. 2000. Central American paleogeography controlled Pliocene Arctic Ocean molluscan migrations. Geology, 28:551554.2.0.CO;2>CrossRefGoogle Scholar
Marincovich, L. J., and Gladenkov, A. Y. 1999. Evidence for an early opening of the Bering Strait. Nature, 397:149151.CrossRefGoogle Scholar
Mooi, R., and Peterson, D. 2000. A new species of Leodia (Clypeasteroida: Echinoidea) from the Neogene of Venezuela and its importance in the phytogeny of mellitid sand dollars. Journal of Paleontology, 74:10831092.CrossRefGoogle Scholar
Olsson, A. A. 1942. Tertiary and Quaternary fossils from the Burica Peninsula of Costa Rica and Panama. Bulletin of American Paleontology, 26, 106 p.Google Scholar
Olsson, A. A. 1964. Neogene Mollusks from Northwestern Ecuador. Paleontological Research Insitution, Ithaca, New York, 256 p.Google Scholar
Palmer, K. V. W. 1927. The Veneridae of Eastern America, Cenozoic and Recent. Palaeontographica Americana, 1:209522.Google Scholar
Petuch, E. J. 1982. Geographical heterochrony: contemporaneous coexistence of Neogene and Recent molluscan faunas in the Americas. Palaeogeography, Palaeoclimatology, Palaeoecology, 37:277312.CrossRefGoogle Scholar
Roopnarine, P. D. 1996. Systematics, biogeography and extinction of chionine bivalves (Early Oligocene—Recent) in the Late Neogene of tropical America. Malacologia, 38:103142.Google Scholar
Roopnarine, P. D. 1997. Endemism and extinction of a new genus of chionine (Bivalvia: Veneridae) bivalve from the late Neogene of Venezuela. Journal of Paleontology, 71:10391046.CrossRefGoogle Scholar
Roopnarine, P. D., and Vermeij, G. J. 2000. One species becomes two: the case of Chione cancellata, the resurrected C. elevata, and a phylogenetic analysis of Chione . Journal of Molluscan Studies, 66:517534.CrossRefGoogle Scholar
Schneider, J. A. 1995. Phylogenetic relationships of transisthmian Cardiidae (Bivalvia) and the usage of fossils in reinterpreting the geminate species concept. Geological Society of America Abstracts with Programs, 27:52.Google Scholar
Stanley, S. M. 1986. Anatomy of a regional mass extinction: Plio-Pleistocene decimation of the Western Atlantic bivalve fauna. Palaios, 1:1736.CrossRefGoogle Scholar
Swofford, D. L. 1998. PAUP (Phylogenetic Analysis Using Parsimony (and Other Methods) Version 4.0. Sinauer Associates, Sunderland, Massachusetts.Google Scholar
Teranes, J. L., Geary, D. H., and Bemis, B. E. 1996. The oxygen isotopic record of seasonality in Neogene bivalves from the Central American Isthmus, p. 105129. In Jackson, J. B. C., Budd, A. F., and Coates, A. G. (eds.), Evolution and Environment in Tropical America. The University of Chicago Press, Chicago.Google Scholar
Vermeij, G. J. 1989. Invasion and extinction: The last three million years of North Sea pelecypod history. Conservation Biology, 3:274281.CrossRefGoogle Scholar
Vermeij, G. J. 1991. When biotas meet: understanding biotic interchange. Science, 253:10991104.CrossRefGoogle ScholarPubMed
Vermeij, G. J. 1997. Strait answers from a twisted isthmus. Paleobiology, 23:263269.CrossRefGoogle Scholar
Vermeij, G. J., and Carlson, S. J. 2000. The muricid gastropod subfamily Rapaninae: phytogeny and ecological history. Paleobiology, 26:1946.2.0.CO;2>CrossRefGoogle Scholar
Vermeij, G. J., and Petuch, E. J. 1986. Differential extinction in tropical American molluscs: endemism, architecture, and the Panama land bridge. Malacologia, 17:2941.Google Scholar
Waller, T. R. 1993. The evolution of “Chlamys“ (Mollusca: Bivalvia: Pectinidae) in the tropical western Atlantic and eastern Pacific. American Malacological Bulletin, 10:195249.Google Scholar
Weisbord, N. E. 1964. Late Cenozoic pelecypods from Northern Venezuela. Bulletins of Paleontology, 45:5564.Google Scholar
Woodring, W. P. 1966. The Panama land bridge as a sea barrier. American Philosophical Society Transactions, 110:425433.Google Scholar