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Levels of selection and macroevolutionary patterns in the turritellid gastropods

Published online by Cambridge University Press:  08 February 2016

Bruce S. Lieberman
Affiliation:
Department of Invertebrates, American Museum of Natural History, Central Park West at 79th Street, New York, New York 10024 Department of Geological Sciences, Columbia University, New York, New York 10027
Warren D. Allmon
Affiliation:
Paleontological Research Institution, 1259 Trumansburg Road, Ithaca, New York 14850
Niles Eldredge
Affiliation:
Department of Invertebrates, American Museum of Natural History, Central Park West at 79th Street, New York, New York 10024

Abstract

This analysis examines the evolution of the greater diversity of species with non-planktonic larval types relative to species with planktonic larval types in the turritellid gastropods. This sort of trend has been documented in both the fossil and recent biota of several gastropod families. Two mechanisms for generating diversity gradients in larval types have been proposed in the literature. The first, species selection, focuses on the population biology of larval types. The second proposes that factors in development that are mediated by organismal adaptation are responsible. Turritellids have been cited as a classic example of species selection. In order to examine the relevance of these two proposed mechanisms, a phylogenetic analysis of the turritellids using molecular sequence data was performed to determine the evolution of larval types in this clade. The resultant phylogeny suggests that species selection is not the only process driving the trend toward increasing numbers of non-planktonic species through time. Developmental processes, apart from those involving organismal adaptation (except in the trivial sense), are implicated as playing a role in this trend. In particular, these processes may involve changes in the timing of germ-line sequestration in organisms. Germ-line sequestration governs how accessible organisms are to heritable variation during ontogeny. Embryological evidence from gastropods suggests that non-planktonic species have early germ-line sequestration relative to planktonic species, making them more resistant to developmental change. Thus, non-planktonic lineages will only rarely revert to a planktonic larval mode.

Type
Articles
Copyright
Copyright © The Paleontological Society 

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References

Literature Cited

Allmon, W. D. 1988. Ecology of recent turritelline gastropods (Prosobranchia, Turritellidae): current knowledge and paleontological implications. Palaios 3:259284.CrossRefGoogle Scholar
Allmon, W. D. 1992a. Systematics and evolution of New World Turritellidae. I. Paleocene and Eocene species related to “Turritella mortoni Conrad” and “Turritella humerosa Conrad” from the U.S. Gulf and Atlantic coastal plains. Bulletins of American Paleontology (in press).Google Scholar
Allmon, W. D. 1992b. Genera in paleontology: definition and significance. Historical Biology 6:149158.CrossRefGoogle Scholar
Arnold, A. J., and Fristrup, K. 1982. The theory of evolution by natural selection: a hierarchical expansion. Paleobiology 8:113129.CrossRefGoogle Scholar
Bandel, K. 1976. Spawning, development and ecology of some higher Neogastropoda from the Caribbean Sea of Colombia (South America). The Veliger 19:176193.Google Scholar
Bieler, R., and Hadfield, M. 1990. A phylogenetic analysis of the genus Vermicularia. Journal of Molluscan Studies 56:205215.CrossRefGoogle Scholar
Blacknell, W. M., and Ansell, A. D. 1974. The direct development of the bivalve Thyasira gouldi. Thalassia Jugoslavica 10:2343.Google Scholar
Burns, T. P., Patten, B. C., and Higashi, M. 1991. Hierarchical evolution in ecological networks: environs and selection. Pp. 211239in Higashi, M. and Burns, T. P., eds. Theoretical studies of ecosystems: the network perspective. Cambridge University Press, New York.Google Scholar
Buroker, N. E. 1985. Evolutionary patterns in the family Ostreidae: larviparity vs. oviparity. Journal of Experimental Marine Biology and Ecology 90:233247.CrossRefGoogle Scholar
Buss, L. W. 1987. The evolution of individuality. Princeton University Press, Princeton.Google Scholar
Buss, L. W. 1988. Diversification and germ-line determination. Paleobiology 14:313321.CrossRefGoogle Scholar
Carrick, N. 1980. Aspects of the biology of Gazameda gunni, a viviparous mesogastropod. Journal of the Malacological Society of Australia 4:254255.Google Scholar
Coddington, J. A. 1988. Cladistic tests of adaptational hypotheses. Cladistics 4:322.CrossRefGoogle ScholarPubMed
Conklin, E. G. 1897. The embryology of Crepidula. Journal of Morphology 13:1226.CrossRefGoogle Scholar
D'Asaro, C. H. 1965. Organogenesis, development, and metamorphosis in the queen conch Strombus gigas, with notes on breeding habits. Bulletin of Marine Science 15:359416.Google Scholar
Dawkins, R. 1976. The selfish gene. Oxford University Press, New York.Google Scholar
Dawkins, R. 1982. The extended phenotype. W. H. Freeman, San Francisco.Google Scholar
Dohmen, M. R. 1983. Gametogenesis. Pp. 148in Verdonk et al. 1983.Google Scholar
Eldredge, N. 1985. Unfinished synthesis. Oxford University Press, New York.Google Scholar
Eldredge, N. 1989. Macroevolutionary dynamics. McGraw Hill, New York.Google Scholar
Farris, J. S. 1988. Hennig86. Version 1.5.CrossRefGoogle Scholar
Feynman, R. 1965. The character of physical law. Massachusetts Institute of Technology Press, Cambridge.Google Scholar
Fretter, V., and Graham, A. 1962. British prosobranch molluscs. Ray Society, London.Google Scholar
Gould, S. J. 1980. Is a new and general theory of evolution emerging? Paleobiology 6:119130.CrossRefGoogle Scholar
Gyllensten, U. B., and Ehrlich, H. A. 1988. Generation of single-stranded DNA by the polymerase chain reaction and its application to direct sequencing of the HLA–DQA locus. Proceedings of the National Academy of Sciences, U.S.A. 85:76527656.CrossRefGoogle ScholarPubMed
Hansen, T. A. 1978. Larval dispersal and species longevity in lower Tertiary gastropods. Science 199:885887.CrossRefGoogle ScholarPubMed
Hansen, T. A. 1980. Influence of larval dispersal and geographic distribution on species longevity in neogastropods. Paleobiology 6:193207.CrossRefGoogle Scholar
Hansen, T. A. 1982. Modes of larval development in Early Tertiary neogastropods. Paleobiology 8:367377.CrossRefGoogle Scholar
Hillis, D. M. 1991. Discriminating between phylogenetic signal and random noise in DNA sequences. Pp. 278294In Miyamoto, M. M., and Cracraft, J., eds. Analysis of DNA sequences. Oxford University Press, New York.Google Scholar
Hines, A. H. 1986. Larval problems and perspectives in the histories of marine invertebrates. Bulletin of Marine Science (Washington, D.C.) 39:506525.Google Scholar
Houbrick, R. S. 1984. Revision of higher level classification of the genus Cerithidea (Mesogastropoda: Potamididae) based on comparative morphology and biological data. American Malacological Bulletin 2:120.Google Scholar
Jablonski, D. 1986. Larval ecology and macroevolution in marine invertebrates. Bulletin of Marine Science 39:565587Google Scholar
Jablonski, D., and Lutz, R. A. 1983. Larval ecology of marine benthic invertebrates: paleobiological implications. Biological Reviews 58:2189.CrossRefGoogle Scholar
Lake, J. A. 1987. A rate-independent technique for analysis of nucleic acid sequences: evolutionary parsimony. Molecular Biology and Evolution 4:167191.Google ScholarPubMed
Lebour, M. V. 1933. The eggs and larvae of Turritella communis Lamarck and Aporrhais pes-pelicani (L.). Journal of the Marine Biological Association of the United Kingdom 18:499506.CrossRefGoogle Scholar
Lebour, M. V. 1937. The eggs and larvae of the British prosobranchs with special reference to those living in the plankton. Journal of the Marine Biological Association of the United Kingdom 22:105166.CrossRefGoogle Scholar
Marwick, J. 1957. Generic revision of the Turritellidae. Proceedings of the Malacological Society of London 32:144166.Google Scholar
Mileikovsky, S. A. 1974. Types of larval development in marine bottom invertebrates: an integrated ecological scheme. Thalassia Jugoslavica 10:171179.Google Scholar
Moor, B. 1983. Organogenesis. Pp. 123178in Verdonk et al. 1983.CrossRefGoogle Scholar
Nei, M. 1987. Molecular evolutionary genetics. Columbia University Press, New York.CrossRefGoogle Scholar
Patton, J. L., and Smith, M. F. 1992. mtDNA phylogeny of Andean mice: a test of diversification across ecological gradients. Evolution 46:174183.Google ScholarPubMed
Perron, F. E. 1981. Larval growth and metamorphosis of Conus (Gastropoda: Toxoglossa). Pacific Science 35:2538.Google Scholar
Perron, F. E. 1986. Life history consequences of differences in developmental mode among gastropods in the genus Conus. Bulletin of Marine Science 39:486497.Google Scholar
Raff, R. A. 1987. Constraint, flexibility, and phylogenetic history in the evolution of direct development in sea urchins. Developmental Biology 119:619.CrossRefGoogle ScholarPubMed
Raff, R. A. 1992. Direct-developing sea urchins and the evolutionary reorganization of early development. BioEssays 14:211218.CrossRefGoogle ScholarPubMed
Raven, C. P. 1958. Morphogenesis: the analysis of molluscan development. Pergamon, New York.Google Scholar
Robertson, R. 1974. Marine prosobranch gastropods: larval studies and systematics. Thalassia Jugoslavica 10:213238.Google Scholar
Saghai-Maroof, M. A., Soliman, K. M., Jorgensen, R. A., and Allard, R. W. 1984. Ribosomal DNA spacer length in barley: Mendelian inheritance, chromosomal location, and population dynamics. Proceedings of the National Academy of Sciences, USA 81:80188021.CrossRefGoogle ScholarPubMed
Salthe, S. N. 1985. Evolving hierarchical systems. Columbia University Press, New York.CrossRefGoogle Scholar
Scheltema, R. S. 1971. Larval dispersal as a means of genetic exchange between geographically separated populations of shoal-water benthic marine gastropods. Biological Bulletin 140:284322.CrossRefGoogle Scholar
Scheltema, R. S. 1978. On the relationship between dispersal of pelagic veliger larvae and the evolution of marine prosobranch gastropods. Pp. 303322in Battaglia, B. and Beardmore, J. A., eds. Marine organisms: genetics, ecology, and evolution. Plenum, New York.Google Scholar
Scheltema, R. S. 1986. On dispersal and planktonic larvae of benthic invertebrates: an eclectic overview and summary of problems. Bulletin of Marine Science 39:290322.Google Scholar
Shuto, T. 1974. Larval ecology of prosobranch gastropods and its bearing on biogeography and paleontology. Lethaia 7:239256.CrossRefGoogle Scholar
Simon, C., Franke, A., and Martin, A. 1991. The polymerase chain reaction: DNA extraction and amplification. Pp. 329339in Hewitt, G. M., Johnston, A. W. B., and Young, J. P. W., eds. Molecular techniques in taxonomy. NATO ASI Series. Series H: Cell Biology, Vol. 57. Springer, Amsterdam.CrossRefGoogle Scholar
Sober, E. 1984. The nature of selection. Massachusetts Institute of Technology Press, Cambridge.Google Scholar
Spiller, J. 1977. Evolution of turritellid gastropods from the Miocene and Pliocene of the Atlantic Coastal Plain. State University of New York at Stony Brook. Unpublished Ph.D. Dissertation.Google Scholar
Stanley, S. M. 1979. Macroevolution: pattern and process. W. H. Freeman, San Francisco.Google Scholar
Strathmann, R. R. 1978a. The evolution and loss of feeding larval stages of marine invertebrates. Evolution 32:894906.CrossRefGoogle ScholarPubMed
Strathmann, R. R. 1978b. Progressive vacating of adaptive types during the Phanerozoic. Evolution 32:907914.CrossRefGoogle ScholarPubMed
Strathmann, R. R. 1986. What controls the type of larval development? Summary statement for the evolution session. Bulletin of Marine Science 39:616622.Google Scholar
Swofford, D. 1990. PAUP: Phylogenetic analysis using parsimony, Version 3.0q. Illinois Natural History Survey, Champaign.Google Scholar
Thorson, G. 1946. Reproduction and larval development of Danish marine bottom invertebrates. Meddelelser fra Kommissionen for Danmarks fiskeri-og Havundersogelser Serie: Plankton 4:1523.Google Scholar
Thorson, G. 1950. Reproductive and larval ecology of marine bottom invertebrates. Biological Reviews 25:145.CrossRefGoogle ScholarPubMed
Verdonk, N. H., and van den Biggelaar, J. A. M. 1983. Early development and the formation of the germ layers. Pp. 91122in Verdonk et al. 1983.Google Scholar
Verdonk, N. H., van den Biggelaar, J. A. M., and Tompa, A. S., eds. 1983. The Mollusca, vol. 3, Development. Academic Press, New York.Google Scholar
Vrba, E. S. 1989. Levels of selection and sorting. Pp. 112168in Harvey, P. H. and Partridge, L., eds. Oxford surveys of evolutionary biology, Vol. 6. Oxford University Press, Oxford.Google Scholar
Vrba, E. S., and Eldredge, N. 1984. Individuals, hierarchies and processes: towards a more complete evolutionary theory. Paleobiology 10:146171.CrossRefGoogle Scholar
Wray, G. A., and Raff, R. A. 1991. The evolution of developmental strategy in marine invertebrates. Trends in Ecology and Evolution 6:4550.CrossRefGoogle ScholarPubMed