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7.—Coral Reefs and Molluscs

Published online by Cambridge University Press:  06 July 2012

C. M. Yonge
Affiliation:
Department of Zoology, University of Edinburgh.

Extract

This address is concerned—not, I feel, unsuitably on this particular occasion—with the two major interests that have occupied me since I began research in marine biology following graduation at Edinburgh in 1922. Initial work on the bivalve molluscs, Mya arenaria and Ostrea edulis, at Edinburgh and Plymouth respectively, was followed by appointment as Balfour Student in the University of Cambridge and leadership of the Great Barrier Reef Expedition of 1928–29. There I made acquaintance with corals, with the reefs they form and with their associated molluscan fauna, which has since been widely extended in other regions of the Indo-Pacific and also in the Gulf of Mexico and the Caribbean in the Atlantic. It is clearly impossible to review this wide subject-matter, this address representing a statement of opinion based largely on the results of personal research.

Type
Research Article
Copyright
Copyright © Royal Society of Edinburgh 1974

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References

References to Literature

Abe, N., 1939. Migration and righting action of the coral, Fungia actiniformis var. palawensis Döderlein. Palao Trop. Biol. Stn Stud., 1, 671694.Google Scholar
Demond, J., 1957. Micronesian reef-associated gastropods. Pacif. Sci., 11, 257341.Google Scholar
Fankboner, P. V., 1971 a. Self righting by tridacnid clams. Nature, Lond., 230, 579580.Google Scholar
Fankboner, P. V., 1971 b. Intracellular digestion of symbiontic zooxanthellae by host amoebocytes in giant clams (Bivalvia:Tridacnidae), with a note on the nutritional role of the hypertrophied siphonal epidermis. Biol. Bull. Mar. Biol. Lab. Woods Hole, 141, 222234.Google Scholar
Gohar, H. A. F., 1940. Studies on the Xeniidae of the Red Sea. Pubh Mar. Biol. Stn Ghardaqa, 2, 25118.Google Scholar
Gohar, H. A. F. and Soliman, G. N., 1963 a. On the biology of three Coralliophilids boring in living coral. Publs Mar. Biol. Stn Ghardaqa, 12, 99126.Google Scholar
Gohar, H. A. F. and Soliman, G. N., 1963 b. On the rock-boring lamellibranch Rocellaria rüppelli (Deshayes). Publs Mar. Biol. Stn Ghardaqa, 12, 145157.Google Scholar
Gohar, H. A. F. and Soliman, G. N., 1963 c. On two mytilids boring in dead coral. Publs Mar. Biol. Stn Ghardaqa, 12, 205218Google Scholar
Goreau, T. F., 1960. On the physiological ecology of the coral Meandrina braziliensis (Milne Edwards & Haime). Proc. Ass. Isl. Mar. Labs, 3.Google Scholar
Goreau, T. F., 1963. Calcium carbonate deposition by coralline algae and corals in relation to their roles as reef builders. Ann. N.Y. Acad. Sci., 109, 127167.Google Scholar
Goreau, T. F., Goreau, N. I. and Yonge, C. M., 1972. On the mode of boring in Fungiacava eilatensis (Bivalvia, Mytilidae). J. Zool. Lond., 166, 5560.Google Scholar
Goreau, T. F., Goreau, N. I. and Yonge, C. M., 1973. On the utilization of photosynthetic products from zooxanthellae and of a dissolved amino acid in Tridacna maxima f. elongata (Roeding) (Mollusca: Bivalvia). J. Zool. Lond., 169, 417454CrossRefGoogle Scholar
Goreau, T. F., Goreau, N. I., Soot-Ryen, T. and Yonge, C. M., 1969. On a commensal mytilid (Mollusca: Bivalvia) opening into the coelenteron of Fungia scutaria (Coelenterata). J. Zool. Lond., 158, 171195.Google Scholar
Goreau, T. F., Goreau, N. I., Yonge, C. M. and Neumann, Y., 1970. On feeding and nutrition in Fungiacava eilatensis (Bivalvia, Mytilidae), a commensal living in fungid corals. J. Zool. Lond., 160, 159172.Google Scholar
Goreau, T. F. and Yonge, C. M., 1968. Coral community on muddy sand. Nature, Land., 217, 421423.CrossRefGoogle Scholar
Hartman, W. D. and Goreau, T. F., 1972. Ceratorella (Porifera: Sclerospongiae) and the Chaetetid ‘Corals’. Trans. Conn. Acad. Arts Sci., 44, 133148.Google Scholar
Kawaguti, S., 1966. Electron microscopy on the mantle of the giant clam with special reference to zooxanthellae and iridophores. Biol. J. Okayama Univ., 12, 8192.Google Scholar
Manton, S. M., 1935. Ecological surveys of coral reefs. Scient. Rep. Gt Barrier Reef Exped., 19281929, 3, 274312.Google Scholar
Marshall, S. M. and Orr, A. P., 1931. Sedimentation on Low Isles reef and its relation to coral growth. Scient. Rep. Gt Barrier Reef Exped., 19281929, 1, 93132.Google Scholar
Otter, G. W., 1937. Rock-destroying organisms in relation to coral reefs. Scient. Rep. Gt Barrier Reef Exped., 19281929, 1, 323352.Google Scholar
Quoy, J. R. and Gaimard, J., 19301935. Voyage de … l'Astrolabe … pendant 1826–1829, sous le commandement de M. J. Dumont d'Urville, etc. Zoologie; 4 vols. and atlas. Paris.Google Scholar
Robertson, R., 1970. Review of the predators and parasites of stony corals, with special reference to symbiotic proso-branch gastropods. Pacif. Sci., 24, 4354.Google Scholar
Rosewater, J., 1965. The family Tridacnidae in the Indo-Pacific. Indo-Pacific Mollusca, 1, 347407.Google Scholar
Saevat, B., 1969. Dominance biologique de quelques mollusques dans les atolls fermes (Tuamotu, Polynesia); phénomène recent-conséquences actuelles. Malacologia, 9, 187189.Google Scholar
Saevat, B., 1971. Evaluation quantitative totale de la faune benthique de la bordure lagunaire d'un atoll de Polynesia Française. C.R. Hebd. Séanc. Acad. Sci. Paris, 272, 211214.Google Scholar
Soliman, G. N., 1969. Ecological aspects of some coral-boring gastropods and bivalves of the northwestern Red Sea. Am. Zoologist, 9, 887894.CrossRefGoogle Scholar
Stasek, C. R., 1962. The form, growth and evolution of the Tridacnidae (giant clams). Archs Zool. Exp. Gen., 101, 140.Google Scholar
Stephenson, T. A. and Stephenson, A., 1935. Growth and asexual reproduction in corals. Scient. Rep. Gt Barrier Reef Exped., 19281929, 3, 167217.Google Scholar
Taylor, D. L., 1969. Identity of zooxanthellae isolated from some Pacific Tridacnidae. J. Phycol., 5, 336340.CrossRefGoogle ScholarPubMed
Taylor, D. L., 1971. Ultrastructure of the ‘zooxanthella’ Endodinium chattonii in situ. J. Mar. Biol Ass. U.K., 51, 227234.CrossRefGoogle Scholar
Taylor, D. L., 1973. The cellular interactions of algal-invertebrate symbiosis. Adv. Mar. Biol., 11, 156.Google Scholar
Taylor, J. D., 1971. Reef associated molluscan assemblages in the western Indian Ocean. Symp. Zool. Soc. Lond., 28, 501534.Google Scholar
Wells, J. W., 1956. Scleractinia. In Treatise on Invertebrate Paleontology (Moore, R. C. ed.), pt. F, Coelenterata. New York: Geol. Soc. Amer. & Kansas Univ. Press.Google Scholar
Wilson, B. R. and Gillett, K., 1971. Australian Shells. Sydney: A. H. & A. W. Reed.Google Scholar
Yonge, C. M., 1935 a. Studies on the biology of Tortugas corals. I. Observations on Maeandra areolata Linn. Pap. Tortugas Lab., 29, 185198.Google Scholar
Yonge, C. M., 1935 b. Studies on the biology of Tortugas corals. II. Variations in the genus Siderastrea. Pap. Tortugas Lab., 29, 199208.Google Scholar
Yonge, C. M., 1936. Mode of life, feeding, digestion and symbiosis with zooxanthellae in the Tridacnidae. Scient. Rep. Gt Barrier Reef Exped., 19281929, 1, 283321.Google Scholar
Yonge, C. M., 1953 a. The monomyarian condition in the Lamellibranchia. Trans. Roy. Soc. Edinb., 62, 443478.Google Scholar
Yonge, C. M., 1953 b. Mantle chambers and water circulation in the Tridacnidae. Proc. Zool. Soc. Lond., 123, 551561.CrossRefGoogle Scholar
Yonge, C. M., 1955. Adaptation to rock boring in Botula and Lithophaga (Lamellibranchia, Mytilidae) with a discussion on the evolution of this habit. Q. Jl. Microsc. Sci., 96, 383410.Google Scholar
Yonge, C. M., 1962. On the primitive significance of the byssus in the Bivalvia and its effects in evolution. J. Mar. Biol. Ass. U.K., 42, 113125.CrossRefGoogle Scholar
Yonge, C. M.. 1963. The biology of coral reefs. Adv. Mar. Biol., 1, 209260.Google Scholar
Yonge, C. M., 1967 a. Observations on Pedum spongyloideum (Chemnitz) Gmelin, a scallop associated with reef-building corals. Proc. Malac. Soc. Lond., 37, 311323.Google Scholar
Yonge, C. M., 1967 b. Form, habit and evolution in the Chamidae (Bivalvia) with reference to conditions in the rudists (Hippuritacea). Phil. Trans. Roy. Soc., B, 252, 49105.Google Scholar
Yonge, C. M., 1968 a. Form and habit in species of Malleus (including the ‘hammer oysters’) with comparative observations on Isognomon. Biol Bull. Mar. Biol. Lab., Woods Hole, 135, 378405.Google Scholar
Yonge, C. M., 1968 b. Living corals. Proc. Roy. Soc. Lond., B, 169, 329344.Google Scholar
Yonge, C. M., 1969. Functional morphology and evolution within the Carditacea (Bivalvia). Proc. Malac. Soc. Lond., 38, 493527.Google Scholar
Yonge, C. M., 1973. Functional morphology with particular reference to hinge and ligament in Spondylus and Plicatula and a discussion on relations within the superfamily Pectinacea (Mollusca: Bivalvia). Phil. Trans. Roy. Soc., B 267, 173208.Google Scholar
Yonge, C. M. and Campbell, J. I., 1968. On the heteromyarian condition in the Bivalvia with special reference to Dreissena polymorpha and certain Mytilacea. Trans. Roy. Soc. Edinb., 68, 2143.Google Scholar