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Escalation in Late Cretaceous-early Paleocene oysters (Gryphaeidae) from the Atlantic Coastal Plain

Published online by Cambridge University Press:  08 February 2016

Gregory P. Dietl
Affiliation:
Department of Ecology and Evolution, State University of New York, Stony Brook, New York 11794-5245
Richard R. Alexander
Affiliation:
Department of Geological and Marine Sciences, Rider University, Lawrenceville, New Jersey 08648-3099
Walter F. Bien
Affiliation:
Department of Bioscience and Biotechnology, Drexel University, Philadelphia, Pennsylvania 19104-2884

Abstract

More than 1600 valves of Late Cretaceous and early Paleocene Northern Atlantic Coastal Plain gryphaeid oysters (Exogyrinae and Pycnodonteinae) were examined for breakage-induced shell repair and morphologic variability to evaluate the hypothesis of escalation. The Exogyrinae show disproportionately higher average repair frequency (0.41) relative to the ecologically and functionally similar unornamented pycnodonts (0.19). An increase in repair frequency (independent evidence of the action of a selective agent, e.g., predation) through the stratigraphic interval supports escalation. Variation in repair frequencies may reflect differences in oyster morphology and in the strength and diversity of shell crushers across an onshore-offshore gradient. Escalation of antipredatory adaptation characterized the evolutionary response of gryphaeid oysters to their durophagous predators. Adaptation generally occurred by the enhancement of existing traits in both oyster lineages. Characters that confer a selective advantage against predators are not all expressed or improved concurrently in both oyster lineages. Morphologic adaptations to minimize shell breakage include the development of expansive, broad commissural shelves, thickened valves, and surface ornamentation (Exogyrinae). Surface ornament in the Exogyrinae gradually increased with time. For some characters, such as thickness, conflicting functional demands (e.g., valve stabilization) may have limited adaptation to predators.

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Articles
Copyright
Copyright © The Paleontological Society 

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References

Literature Cited

Alexander, R. R. 1981. Predation scars preserved in Chesterian brachiopods: probable culprits and evolutionary consequences for the articulates. Journal of Paleontology 55:192203.Google Scholar
Alexander, R. R. 1986. Resistance to and repair of shell breakage induced by durophages in Late Ordovician brachiopods. Journal of Paleontology 60:273285.CrossRefGoogle Scholar
Alexander, R. R. 1989. Influence of valve geometry, ornamentation, and microstructure on fractures in Late Ordovician brachiopods. Lethaia 22:133147.CrossRefGoogle Scholar
Alexander, R. R. 1990. Mechanical strength of shells of selected extant articulate brachiopods: implications for Paleozoic morphologic trends. Historical Biology:169188.CrossRefGoogle Scholar
Bayer, U., Johnson, A. L. A., and Brannan, J. 1985. Ecological patterns in Middle Jurassic Gryphaea: the relationship between form and environment. Pp. 436463in Bayer, U. and Seilacher, A., eds. Sedimentary and evolutionary cycles. Springer, Berlin.CrossRefGoogle Scholar
Bien, W. F., Wendt, J. M., and Alexander, R. R. 1995. Rheotaxic distributions of lithophagid and clinoid borings in the oysters Exogyra cancellata and Pycnodonte mutabilis from the Late Cretaceous Marshalltown Formation of Delaware. Geological Society of America Abstracts with Programs, Northeastern Sectional Meeting, p. 30.Google Scholar
Bien, W. F. 1999. Site selection and behavior of sponge and bivalve borings in the Cretaceous oysters Exogyra cancellata and Pycnodonte mutabilis from Delaware, USA. Historical Biology 13:299315.CrossRefGoogle Scholar
Bishop, G. A. 1983. Oyster predation by decapod crustaceans in the Late Cretaceous of the Mississippi Embayment. Georgia Journal of Science 41:24.Google Scholar
Bishop, G. A. 1986. Occurrence, preservation, and biogeography of the Cretaceous crabs of North America. Pp. 111142in Gore, R. H. and Heck, K. L., eds. Crustacean issues, Vol. 4. Crustacean biogeography. Balkema, Rotterdam.Google Scholar
Blundon, J. A., and Kennedy, V. S. 1982. Mechanical and behavioral aspects of blue crab, Callinectes sapidus (Rathbun), predation on Chesapeake Bay bivalves. Journal of Experimental Marine Biology and Ecology 65:4765.CrossRefGoogle Scholar
Bond, P. N., and Saunders, W. B. 1989. Sublethal injury and shell repair in Upper Mississippian ammonoids. Paleobiology 15:414428.CrossRefGoogle Scholar
Boulding, E. G. 1984. Crab-resistant features of shells of burrowing bivalves: decreasing vulnerability by increasing handling time. Journal of Experimental Marine Biology and Ecology 76:201223.CrossRefGoogle Scholar
Cadée, G. C., Walker, S. E., and Flessa, K. W. 1997. Gastropod shell repair in the intertidal of Bahía la Choya (N. Gulf of California). Palaeogeography, Palaeoclimatology, Palaeoecology 136:6778.CrossRefGoogle Scholar
Cappetta, H. 1987. Handbook of paleoichthyology, Vol. 3B. Chondrichthyes II, Mesozoic and Cenozoic Elasmobranchii. Gustav Fisher, New York.Google Scholar
Carriker, M. R. 1996. The shell and ligament. Pp. 75168in Kennedy, V. S., Newell, R. I. E., and Eble, A. F., eds. The eastern oyster Crassostrea virginica. Maryland Sea Grant College, University of Maryland System, College Park.Google Scholar
Case, G. R. 1995. Fossil shark remains from the early and middle Maastrichtian of the upper Cretaceous of Monmouth County, New Jersey. Pp. 7283in Baker, J. E. B., ed. Contributions to the paleontology of New Jersey, Vol. 12. Geological Association of New Jersey.Google Scholar
Checa, A. G., and Jiménez, A. P. 1999. A mechanical model for rib formation in Ostreiodea. Biology and evolution of the Bivalvia. Malacological Society of London, Abstracts with programs, p. 12.Google Scholar
Dietl, G. P., and Alexander, R. R. 1998. Shell repair frequencies in whelks and moon snails from Delaware and southern New Jersey. Malacologia 39:151165.Google Scholar
Futuyma, D. J. 1986. Evolutionary biology. Sinauer, Sunderland, Mass.Google ScholarPubMed
Gallagher, W. B. 1991. Selective extinction and survival across the Cretaceous/Tertiary boundary in the northern Atlantic Coastal Plain. Geology 19:967970.2.3.CO;2>CrossRefGoogle Scholar
Gallagher, W. B. 1993. The Cretaceous/Tertiary mass extinction event in the northern Atlantic Coastal Plain. Mosasaur 5:75154.Google Scholar
Galtsoff, P. S. 1964. The American oyster Crassostrea virginica Gmelin. U.S. Bureau of Commercial Fisheries, Fishery Bulletin 64:1480.Google Scholar
Glaessner, M. F. 1969. Decapoda. Pp. R400R651in Brooks, H. K. et al. Arthropoda 4. Part R ofMoore, R. C., ed. Treatise on invertebrate paleontology. Geological Society of America and University of Kansas, Boulder, Colo.Google Scholar
Hallam, A. 1968. Morphology, palaeoecology, and evolution of the genus Gryphaea in the British Lias. Philosophical Transactions of the Royal Society of London B 254:91128.Google Scholar
Hancock, D. A. 1965. Adductor muscle size in Danish and British mussels and its relation to starfish predation. Ophelia 2:253267.CrossRefGoogle Scholar
Hirayama, R. 1997. Distribution and diversity of Cretaceous chelonoids. Pp. 235241in Callaway, J. M. and Nicholls, E. L., eds. Ancient marine reptiles. Academic Press, New York.Google Scholar
Ivanov, A. V. 1995. New taxa of the suborder Exogyrina (Ostreoida, Bivalvia). Paleontological Journal 29:3044.Google Scholar
Johnson, A. L. A. 1994. Evolution of European Lower Jurassic Gryphaea (Gryphaea) and contemporaneous bivalves. Historical Biology 7:167186.CrossRefGoogle Scholar
Jones, D. S., and Gould, S. J. 1999. Direct measurement of age in fossil Gryphaea: the solution to a classic problem in heterochrony. Paleobiology 25:158187.CrossRefGoogle Scholar
Kelley, P. H. 1991. The effect of predation intensity on rate of evolution of five Miocene bivalves. Historical Biology 5:6578.CrossRefGoogle Scholar
Kelley, P. H., and Hansen, T. A.In press. The role of ecological interactions in the evolution of naticid gastropods and their molluscan prey. In Allmon, W. and Bottjer, D., eds. Evolutionary paleoecology. Columbia University Press, New York.Google Scholar
Kelley, P. H., and Johnston, J. E. 1986. Within-species variation as a basis for interspecific evolution of four coastal plain Exogyra species. Geological Society of America Abstracts with Programs 18:654.Google Scholar
LaBarbera, M. 1981. The ecology of Mesozoic Gryphaea, Exogyra, and Ilymatogyra (Bivalvia: Mollusca) in a modern ocean. Paleobiology 7:510526.CrossRefGoogle Scholar
Lauginiger, E. M., and Hartstein, E. F. 1983. A guide to fossil sharks, skates, and rays from the Chesapeake and Delaware Canal area, Delaware. Delaware Geological Survey Open File Report 21.Google Scholar
Lerman, A. 1965. Evolution of Exogyra in the late Cretaceous of the southeastern United States. Journal of Paleontology 39:414435.Google Scholar
Levinton, J. S. 1988. Genetics, paleontology, and macroevolution. Cambridge University Press, New York.Google Scholar
Levinton, J. S., and Simon, C. 1980. A critique of the punctuated equilibria model and implications for the detection of speciation in the fossil record. Systematic Zoology 29:130142.CrossRefGoogle Scholar
Lewy, Z. 1976. Morphology of the shell in Gryphaeidae. Israel Journal of Earth Sciences 25:4550.Google Scholar
Malchus, N. 1990. Revision der Kreide-Austern (Bivalvia: Pteriomorphia) Egyptens (Biostratigraphie, Systematik). Berliner Geowissenschaftliche, Abhandlungen 125:1231.Google Scholar
Massare, J. A. 1987. Tooth morphology and prey preference of Mesozoic marine reptiles. Journal of Vertebrate Paleontology 7:121137.CrossRefGoogle Scholar
Morrison, C. M. 1996. Adductor and mantle musculature. Pp. 169183in Kennedy, V. S., Newell, R. I. E., and Eble, A. F., eds. The eastern oyster Crassostrea virginica. Maryland Sea Grant College, University of Maryland System, College Park.Google Scholar
Moss, S. A. 1977. Feeding mechanisms in sharks. American Zoologist 17:355364.CrossRefGoogle Scholar
Nursall, J. R. 1996. Distribution and ecology of pycnodont fishes. Pp. 115124in Arratia, G. and Viohl, G., eds. Mesozoic fishes, systematics and paleoecology: proceedings of the international meeting, Eichstät, 1993. F. Pfeil, Munchen.Google Scholar
Owens, J. P., and Sohl, N. F. 1969. Shelf and deltaic paleoenvironments in the Cretaceous-Tertiary formations of the New Jersey coastal plain. Pp. 235278in Subitzky, S., ed. Geology of selected areas in New Jersey and eastern Pennsylvania. Rutgers University Press, New Brunswick, N.J.Google Scholar
Owens, J. P., Minard, J. P., Sohl, N. F., and Mello, J. F. 1970. Stratigraphy of the outcropping post-Magothy Upper Cretaceous formations in southern New Jersey and northern Delmarva Peninsula, Delaware and Maryland. U.S. Geological Survey Professional Paper 674.CrossRefGoogle Scholar
Rathbun, M. J. 1935. Fossil crustacea of the Atlantic and Gulf coastal plain. Geological Society of America Special Paper 2.Google Scholar
Reeside, J.B. Jr. 1929. Exogyra olisiponensis Sharpe and Exogyra costata Say in the Cretaceous of the western interior. U.S. Geological Survey Professional Paper 154:267278.Google Scholar
Richards, H. G., Ramsdell, R. C., Howell, B. F., Wells, J. W., and Cooke, C. W. 1958. The Cretaceous fossils of New Jersey, Part I. Bureau of Geology and Topography Bulletin 61. Department of Conservation and Economic Development, Trenton, N.J.Google Scholar
Russell, D. A. 1975. A new species of Globidens from South Dakota and a review of globidentine mosasaurs. Fieldiana (Geology) 13:235256.Google Scholar
Schmidt, N. 1989. Paleobiological implications of shell repair in Recent marine gastropods from the northern Gulf of California. Historical Biology 3:127139.CrossRefGoogle Scholar
Seed, R., and Hughes, R. N. 1995. Criteria for prey size-selection in molluscivorous crabs with contrasting claw morphologies. Journal of Experimental Marine Biology and Ecology 193:177195.CrossRefGoogle Scholar
Sohl, N. F. 1977. Benthic marine molluscan associations from the Upper Cretaceous of New Jersey and Delaware. Pp. 7094in Owens, J. P., Sohl, N. F., and Minard, J. P., eds. A field guide to Cretaceous and Lower Tertiary beds of the Raritan and Salisbury Embayments, New Jersey, Delaware, and Maryland. AAPG/SEPM convention, Washington, D.C.Google Scholar
Stenzel, H. B. 1971. Oysters. Pp. N9531224in Cox, L. R. et al. Mollusca 6, Bivalvia. Part N ofMoore, R. C. ed. Treatise on invertebrate paleontology. Geological Society of America and University of Kansas, Boulder, Colo.Google Scholar
Stephenson, L. W. 1914. Cretaceous deposits of the eastern Gulf region and species of Exogyra from the eastern Gulf region and the Carolinas. United States Geological Survey Professional Paper 81:177.Google Scholar
Tshudy, D., Baumiller, T. K., and Sorhannus, U. 1998. Morphologic changes in the clawed Iobster Hoploparia (Nephropidae) for the Cretaceous of Antarctica. Paleobiology 24:6473.CrossRefGoogle Scholar
Vermeij, G. J. 1977. The Mesozoic marine revolution: evidence from snails, predators and grazers. Paleobiology 3:245258.CrossRefGoogle Scholar
Vermeij, G. J. 1982. Gastropod shell form, breakage, and repair in relation to predation by the crab Calappa. Malacologia 23:112.Google Scholar
Vermeij, G. J. 1983. Shell-breaking predation through time. Pp. 649669in Tevesz, M.J.S. and McCall, P. L., eds. Biotic interactions in Recent and fossil benthic communities. Plenum, New York.CrossRefGoogle Scholar
Vermeij, G. J. 1987. Evolution and escalation: an ecological history of life. Princeton University Press, Princeton, N.J.CrossRefGoogle Scholar
Vermeij, G. J. 1994. The evolutionary interaction among species: selection, escalation, and coevolution. Annual Review of Ecology and Systematics 25:219236.CrossRefGoogle Scholar
Vermeij, G. J., and Dudley, E. C. 1982. Shell repair and drilling in some gastropods from the Ripley Formation (Upper Cretaceous) of the south-eastern U.S.A. Cretaceous Research 3:397403.CrossRefGoogle Scholar
Vermeij, G. J., and Veil, J. A. 1978. A latitudinal pattern in bivalve shell gaping. Malacologia 17:5761.Google Scholar
Vermeij, G. J., Zipser, E., and Dudley, E. C. 1980. Predation in time and space: peeling and drilling in terebrid gastropods. Paleobiology 6:352364.CrossRefGoogle Scholar
Vermeij, G. J., Schindel, D. E., and Zipser, E. 1981. Predation through geological time: evidence from gastropod shell repair. Science 214:10241026.CrossRefGoogle ScholarPubMed
Wingard, G. L. 1993. A detailed taxonomy of Upper Cretaceous and Lower Tertiary Crassatellidae in the eastern United States: an example of the nature of extinction at the boundary. U.S. Geological Survey Professional Paper 1535.CrossRefGoogle Scholar