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Paleoenvironmental control of species distributions and intraspecific variability in Neogene Corbulidae (Bivalvia: Myacea) of the Dominican Republic

Published online by Cambridge University Press:  20 May 2016

Laurie C. Anderson*
Affiliation:
Department of Geology and Geophysics, Louisiana State University, Baton Rouge 70803

Abstract

The widespread occurrence and local abundance of corbulid bivalves in Neogene deposits of the northern Dominican Republic provide an opportunity to evaluate physical controls on species distributions and intraspecific variability in this group. First and last appearances of species probably do not record speciation and extinction, but instead represent migrations into and out of the study area, and reflect corbulids' preference for marginal-marine and shallow-marine conditions. Corbula cercadica and C. viminea show patterns of intraspecific morphologic variability over time and space. Corbula cercadica shows continuous morphologic variability along a paleoenvironmental gradient of salinity, depth, and bioclastic fabric, whereas variation in C. viminea is morphologically clinal from west to east in roughly contemporaneous sediments, with variability related to sediment type and bioclastic fabric. Ecophenotypic variation or genetic differences, rather than taphonomic processes, seem to control geographic variability within C. cercadica and C. viminea. Although it is not possible to determine whether intraspecific morphologic variability was under genetic control, its stronger relationship with paleoenvironmental conditions relative to stratigraphic position suggests lack of anagenetic morphological evolution.

Type
Research Article
Copyright
Copyright © The Paleontological Society 

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References

Adams, C. B. 1852. Catalogue of shells collected at Panama with notes on synonymy, station, and habitat. Annals of the Lyceum of Natural History New York, 5:222549.Google Scholar
Anderson, L. C., Geary, D. H., Budd, A. F., Nehm, R. H., Johnson, K. G., and Stemann, T. A. 1992. Paleoenvironmental control of species distributions in Neogene invertebrate taxa of the Dominican Republic, p. 6. In Lidgard, S. and Crane, P. R. (eds.), Fifth North American Paleontological Convention, Abstracts and Program. The Paleontological Society, Special Publication No. 6.Google Scholar
Britton, J. C., and Morton, B. 1986. Polymorphism in Corbicula fluminea (Bivalvia: Corbiculoidea) from North America. Malacological Review, 19:143.Google Scholar
van den Bold, W. A. 1988. Neogene paleontology in the northern Dominican Republic. 7. The subclass Ostracoda (Arthropoda: Crustacea). Bulletins of American Paleontology, 94:1105.Google Scholar
Budd, A. F., Johnson, K. G., and Stemann, T. A.Submitted. Plio-Pleistocene turnover and extinctions in the Caribbean reef coral fauna. In Jackson, J. B. C., Coates, A. G., and Budd, A. F. (eds.), Evolution and Environment in Tropical America over the Last Ten Million Years. University of Chicago Press, Chicago, Illinois.Google Scholar
Collins, L. S. 1989. Relationship of environmental gradients to morphologic variation within Bulimina aculeata and Bulimina marginala, Gulf of Maine area. Journal of Foraminiferal Research, 19:222234.CrossRefGoogle Scholar
Geary, D. H. 1992. An unusual pattern of divergence between two fossil gastropods: ecophenotypy, dimorphism, or hybridization? Paleobiology, 18:93109.Google Scholar
Gould, S. J., and Johnston, R. F. 1972. Geographic variation. Annual Review of Ecology and Systematics, 3:457498.Google Scholar
Gosling, E. M. 1984. The systematic status of Mytilus galloprovincialis in western Europe: a review. Malacologia, 25:551568.Google Scholar
Gosling, E. M., and Wilkins, N. P. 1981. Ecological genetics of the mussels Mytilus edulis and M. galloprovincialis on Irish coasts. Marine Ecology Progress Series, 4:221227.Google Scholar
Groue, K. J., and Lester, L. J. 1982. A morphological and genetic analysis of geographic variation among oysters in the Gulf of Mexico. The Veliger, 24:331335.Google Scholar
Guppy, R. J. L. 1866a. On the relations of the Tertiary formations of the West Indies. Quarterly Journal of the Geological Society of London, 22:570590.Google Scholar
Guppy, R. J. L. 1866b. On the Tertiary Mollusca of Jamaica. Quarterly Journal of the Geological Society of London, 22:281295.CrossRefGoogle Scholar
Hermelin, J. O. R., and Malmgren, B. A. 1980. Multivariate Analysis of environmentally controlled variation in Lagena: Late Maastrichtian, Sweden. Cretaceous Research, 1:193206.CrossRefGoogle Scholar
Hillis, D. M., and Patton, J. C. 1982. Morphological and electrophoretic evidence for two species of Corbicula (Bivalvia: Corbiculidae) in North America. American Midland Naturalist, 108:7480.Google Scholar
Hinch, S. G., and Bailey, R. C. 1988. Within- and among-lake variation in shell morphology of the freshwater clam Elliptio complanata (Bivalvia: Unionidae) from south-central Ontario. Hydrobiologia, 157:2732.Google Scholar
Hinch, S. G., and Bailey, R. C., and Green, R. H. 1986. Growth of Lampsilis radiata (Bivalvia: Unionidae) in sand and mud: a reciprocal transplant experiment. Canadian Journal of Fisheries and Aquatic Sciences, 43:548552.Google Scholar
Hinch, S. G., Kelly, L. J., and Green, R. H. 1989. Morphological variation of Elliptio complanata (Bivalvia: Unionidae) in differing sediments of soft-water lakes exposed to acidic deposition. Canadian Journal of Zoology, 67:18951899.CrossRefGoogle Scholar
Johannesson, K., Kautsky, N., and Tedengren, M. 1990. Genotypic and phenotypic differences between Baltic and North Sea populations of Mytilus edulis evaluated through reciprocal transplantations. II. Genetic variation. Marine Ecology Progress Series, 59:211219.CrossRefGoogle Scholar
Kautsky, N., Johannesson, K., and Tedengren, M. 1990. Genotypic and phenotypic differences between Baltic and North Sea populations of Mytilus edulis evaluated through reciprocal transplantations. I. Growth and morphology. Marine Ecology Progress Series, 59:203210.Google Scholar
Keen, A. M. 1971. Sea Shells of Tropical West America (2nd ed.). Stanford University Press, Stanford, 1,064 p.Google Scholar
Kidwell, S. M., and Holland, S. M. 1991. Field description of coarse bioclastic fabrics. Palaios, 6:426434.Google Scholar
Lande, E. 1975. The distribution of pelecypods in Borgenfjorden, North-Tröndelag, Norway. Norwegian Journal of Zoology, 23:5566.Google Scholar
Lewy, Z., and Samtleben, C. 1979. Functional morphology and palaeontological significance of the conchiolin layers in corbulid pelecypods. Lethaia, 12:341351.Google Scholar
Lohmann, G. P., and Malmgren, B. A. 1983. Equatorward migration of Globorotalia truncatulinoides ecophenotypes through the late Pleistocene: gradual evolution or ocean change? Paleobiology, 9:414421.CrossRefGoogle Scholar
Malmgren, B. A. 1984. Analysis of the environmental influence on the morphology of Ammonia beccarii (Linné) in southern European salinas. Geobios, 6:737746.CrossRefGoogle Scholar
Maslin, J.-L., and Bouvet, Y. 1986. Population dynamics of Corbula trigona (Mollusca) in Lake Ahémé, a West African lagoon in Benin. Oikos, 46:292302.CrossRefGoogle Scholar
Maslin, J.-L., and Bouvet, Y. 1988. Métabolisme respiratoire de Corbula trigona (Mollusque, Pélécypode) d'une lagune du sud Bénin. Revue d'Hydrobiologie Tropicale, 21:919.Google Scholar
Maury, C. J. 1917. Santo Domingo type sections and fossils. Part 1: Mollusca. Bulletins of American Paleontology, 5:165415.Google Scholar
Maury, C. J. 1922. The Recent Arcas of the Panamic Province. Palaeontographica Americana, 1:163208.Google Scholar
McDonald, J. H., Seed, R., and Koehn, R. K. 1991. Allozymes and morphometric characters of three species of Mytilus in the Northern and Southern Hemispheres. Marine Biology, 111:323333.CrossRefGoogle Scholar
McLeod, M. J. 1986. Electrophoretic variation in North American Corbicula. American Malacological Bulletin, Special Edition No. 2:125132.Google Scholar
Nehm, R. H., and Geary, D. H. 1994. A gradual morphological transition during a rapid speciation event in marginellid gastropods (Neogene; Dominican Republic). Journal of Paleontology, 68:in press.Google Scholar
Newell, C. L., and Hidu, H. 1982. The effects of sediment type on growth rate and shell allometry in the soft shelled clam Mya arenaria L. Journal of Experimental Marine Biology and Ecology, 65:285295.CrossRefGoogle Scholar
Olsson, A. A. 1932. Contributions to the Tertiary paleontology of northern Peru: part 5, the Peruvian Miocene. Bulletins of American Paleontology, 19:1272.Google Scholar
Olsson, A. A. 1961. Mollusks of the Tropical Eastern Pacific: Panamic–Pacific Pelecypoda. Paleontological Research Institution, Ithaca, New York, 574 p.Google Scholar
Pilsbry, H. A. 1932. Note on a Panamic corbulid clam. The Nautlius, 45:105.Google Scholar
Saunders, J. B., Jung, P., Geister, J., and Biju-Duval, B. 1982. The Neogene of the south flank of the Cibao Valley, Dominican Republic: a stratigraphic study. Transactions of the Ninth Caribbean Geological Conference, Volume 1:151160.Google Scholar
Saunders, J. B., Jung, P., and Biju-Duval, B. 1986. Neogene paleontology in the northern Dominican Republic. 1. Field surveys, lithology, environment, and age. Bulletins of American Paleontology, 89:179.Google Scholar
Seed, R. 1968. Factors influencing shell shape in the mussel Mytilus edulis. Journal of the Marine Biological Association of the United Kingdom, 48:561584.CrossRefGoogle Scholar
Seed, R. 1992. Systematics, evolution, and distribution of mussels belonging to the genus Mytilus: an overview. American Malacological Bulletin, 9:123137.Google Scholar
Singh, S. M., and Zouros, E. 1981. Genetics of growth rate in oysters and its implications for aquaculture. Canadian Journal of Genetics and Cytology, 23:119130.CrossRefGoogle Scholar
Skibinski, D. O. F., Cross, T. F., and Ahmad, M. 1980. Electrophoretic investigation of systematic relationships in the marine mussels Modiolus modiolus L., Mytilus edulis L., and Mytilus galloprovincialis Lmk. (Mytilidae; Mollusca). Biological Journal of the Linnean Society, 13:6574.Google Scholar
Stanley, S. M. 1970. Relation of shell form to life habits of the Bivalvia (Mollusca). The Geological Society of America, Memoir 125, 296 p.Google Scholar
Tedengren, M., André, C., Johannesson, K., and Kautsky, N. 1990. Genotypic and phenotypic differences between Baltic and North Sea populations of Mytilus edulis evaluated through reciprocal transplantations. III. Physiology. Marine Ecology Progress Series, 59:221227.Google Scholar
Tissot, B. N. 1984. Multivariate analysis of geographic variation in Cypraea caputserpentis (Gastropoda: Cypraeidae). The Veliger, 27:106119.Google Scholar
Varvio, S-L., Koehn, R. K., and Väinölä, Å. 1988. Evolutionary genetics of the Mytilus edulis complex in the North Atlantic region. Marine Biology, 98:5160.Google Scholar
Vokes, E. H. 1979. The age of the Baitoa Formation, Dominican Republic, using Mollusca for correlation. Tulane Studies in Geology and Paleontology, 15:105116.Google Scholar
Vokes, H. E. 1945. Supraspecific groups of the pelecypod family Corbulidae. Bulletin of the American Museum of Natural History, 86:532.Google Scholar
Wilkinson, L. 1988. SYSTAT: the System for Statistics. SYSTAT, Inc., Evanston, Illinois, 822 p.Google Scholar
Woodring, W. P. 1973. Geology and paleontology of Canal Zone and adjoining parts of Panama: description of Tertiary mollusks (additions to gastropods, scaphopods, pelecypods: Nuculidae to Malleidae). U. S. Geological Survey, Professional Paper 306-E, p. 453539.Google Scholar