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Experimental Approaches in Neoichnology

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The Study of Trace Fossils

Synopsis

A variety of experimental approaches have been taken in behavioral studies of mobile invertebrates, ranging from simple observations in aquaria to the use of sophisticated equipment. Studies involving these approaches are of greatest benefit to ichnology when destruction of primary sedimentary structures and formation of biogenic structures are also noted, but behavioral studies themselves are of practical value in reconstructing paleoethologies.

Invertebrates may be split into two artificial groups, according to their respective burrowing mechanisms. “Soft-bodied” animals rely on the generation of high internal-fluid pressures within specific body parts to produce anchors in the sediment. The musculature can then work against these anchors to pull the organism forward. “Hard-bodied” invertebrates rely on the action of appendages or spines to effect locomotion. The similarity of mechanisms within each group is due to limitations placed on the organism by the substrate in which it must move and by the required life functions of the animal itself.

In general, however, no such clear, parallel division is seen between sedimentary traces produced by members of the two groups. This disparity is due to the large variety of specific adaptations shown by these animals, and the somewhat greater independence of these individual adaptations from the sedimentary environment, relative to possible modes of locomotion. Herein lies the main justification for experimental neoichnology: to study these adaptations and their role in the formation of specific traces by specific organisms, thereby gaining information that is invaluable in interpretations of trace fossils.

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References

  • Allen, J. A. 1958a. On the basic form and adaptations to habitat in the Lucinacea (Eulamellibranchia). Royal Soc. London, Philos. Trans., Ser. B, 241:421–484.

    Article  Google Scholar 

  • Allen, J. A. 1958b. Observations onCochlodesma praetenue (Pulteney) (Eulamellibranchia). Jour. Marine Biol. Assoc. United Kingdom, 37:97–112.

    Article  Google Scholar 

  • Ansell, A. D. 1962. Observations on burrowing in the Veneridae (Eulamellibranchia). Biol. Bull., 123:521–530.

    Article  Google Scholar 

  • Ansell, A. D. 1967. Burrowing inLyonsia norvegica (Gmelin) (Bivalvia: Lyonsiidae). Malacol. Soc. London, Proc., 37:387–393.

    Google Scholar 

  • Ansell, A. D. 1970. Boring and burrowing mechanisms in Petricola pholadiformis Lamarck. Jour. Experiment. Marine Biol. Ecol., 4:211–220.

    Article  Google Scholar 

  • Ansell, A. D. and A. Trevallion. 1969. Behavioral adaptations of intertidal molluscs from a tropical sandy beach. Jour. Experiment. Marine Biol. Ecol., 4:9–35.

    Article  Google Scholar 

  • Ansell, A. D. and E. R. Trueman. 1967a. Observations on burrowing in Glycymeris glycymeris (L.) (Bivalvia, Arcacea). Jour. Experiment. Marine Biol. Ecol., 1:65–75.

    Article  Google Scholar 

  • Ansell, A. D. and E. R. Trueman. 1967b. Burrowing in Mercenaria mercenaria (L.) (Bivalvia, Veneridae). Jour. Experiment. Biol., 46:105–115.

    Google Scholar 

  • Ansell, A. D. and E. R. Trueman. 1968. The mechanism of burrowing in the anemone, Peachia hastata Gosse. Jour. Experiment. Marine Biol. Ecol., 2:124–134.

    Article  Google Scholar 

  • Barnes, R. D. 1965. Tube-building and feeding in chaetopterid polychaetes. Biol. Bull., 129:217–233.

    Article  Google Scholar 

  • Bell, B. M. and R. W. Frey. 1969. Observations on ecology and the feeding and burrowing mechanisms of Mellita quinquiesperforata (Leske). Jour. Paleont., 43:533–560.

    Google Scholar 

  • Brown, A. C. 1964. Blood volume, blood distribution and sea-water spaces in relation to expansion and retraction of the foot in Bullia (Gastropoda). Jour. Experiment. Biol., 41:837–854.

    Google Scholar 

  • Buchanan, J. B. 1966. The biology ofEchinocardium cordatum (Echinodermata: Spatangoida) from different habitats. Jour. Marine Biol. Assoc. United Kingdom, 46:97–114.

    Article  Google Scholar 

  • Carlson, A. J. 1905. The physiology of locomotion in gasteropods. Biol. Bull., 8:85–92.

    Article  Google Scholar 

  • Chapman, G. and G. E. Newell. 1947. The role of the body fluid in relation to movement in soft-bodied invertebrates: I. The burrowing of Arenicola. Royal Soc. London, Proc., Ser. B, 134:431–455.

    Article  Google Scholar 

  • Chapman, G. and G. E. Newell. 1948. Burrowing of the lugworm. Nature, 162:894–895.

    Article  Google Scholar 

  • Clark, R. B. and M. E. Clark. 1960. The ligamentary system and the segmental musculature of Nepthys. Microscopic. Sci., Quart. Jour., 101:149–176.

    Google Scholar 

  • Dennell, R. 1933. The habits and feeding mechanism of the amphipod Haustorius arenarius Slabber. Linnean Soc. London, Zool. Jour., 38: 363–388.

    Article  Google Scholar 

  • Devine, C. E. 1966. Ecology of Callianassa filholi Milne-Edwards 1878 (Crustacea, Thalassinidae). Royal Soc. New Zealand, Trans., 8:93–110.

    Google Scholar 

  • Dinamani, P. 1964. Burrowing behavior of DentaliumBiol. Bull., 126:28–32.

    Article  Google Scholar 

  • Drew, G. A. 1900. Locomotion inSolenomya and its relatives. Anatom. Anzeiger, 17:257–266.

    Google Scholar 

  • Drew, G. A. 1907. The habits and movements of the razor-shell clam, Ensis directus, Con. Biol. Bull., 12:127–140.

    Article  Google Scholar 

  • Dybern, B. I. and T. Höisaeter. 1965. The burrows of Nephrops norvegiens (L.). Sarsia, 21:49–55.

    Google Scholar 

  • Enders, H. E. 1909. A study of the life-history and habits of Chaetopterus variopedatus, Renier and Claparède. Jour. Morphol., 20:479–532.

    Article  Google Scholar 

  • Forbes, A. T. 1973. An unusual abbreviated larval life in the estuarine burrowing prawn Callianassa kraussi (Crustacea: Decapoda: Thalassinidea). Marine Biol., 22:361–365.

    Article  Google Scholar 

  • Frey, R. W. 1970. The lebensspuren of some common marine invertebrates near Beaufort, North Carolina. II. Anemone burrows. Jour. Paleont., 44:308–311.

    Google Scholar 

  • Frey, R. W. and J. D. Howard. 1972. Georgia coastal region, Sapelo Island, U.S.A.: sedimentology and biology. VI. Radiographic study of sedimentary structures made by beach and offshore animals in aquaria. Senckenbergiana Marit., 4:169–182.

    Google Scholar 

  • Fricke, H. W. 1970. Beobachtungen über Verhalten und Lebensweise des im Sand lebenden Schlangensternes Amphioplus sp. Helgoländer Wiss. Meeresuntersuch., 21:124–133.

    Article  Google Scholar 

  • Friedrich, H. and L. P. Langeloh. 1936. Untersuchungen zur Physiologie der Bewegung und des Hautmuskelschlauches bei Halicryptus spinulosus und Priapulus caudatus Biol. Zentralblatt, 56:249–260.

    Google Scholar 

  • Gerould, J. H. 1897. The anatomy and histology of Caudina arenata Gould. Boston Soc. Nat. Hist., Proc., 27:7–75.

    Google Scholar 

  • Gersch, M. 1934. Zur experimentellen Veränderung der Richtung der Wellenbewegung auf der Kriechsohle von Schnecken und zur Rückwärtsbewegung von Schnecken. Biol. Zentralblatt, 54:511–518.

    Google Scholar 

  • Gordon, D. C., Jr. 1966. The effects of the deposit feeding polychaete Pectinaria gouldii on the intertidal sediments of Barnstable Harbor. Limnol. Oceanogr., 11:327–332.

    Article  Google Scholar 

  • Gräf, I. E. 1956. Die Fährten von Littorina littorea Linné (Gastropoda) in verschiedenen Sedimenten. Senckenbergiana Leth., 37:305–317.

    Google Scholar 

  • Hammond, R. A. 1970. The burrowing of Priapulus caudatus. Jour. Zool., 162:469–480.

    Article  Google Scholar 

  • Holme, N. A. 1961. Notes on the mode of life of the Tellinidae (Lamellibranchia). Jour. Marine Biol. Assoc. United Kingdom, 41:699–703.

    Article  Google Scholar 

  • Howard, J. D. 1968. X-ray radiography for examination of burrowing in sediments by marine invertebrate organisms. Sedimentology, 11:249–258.

    Article  Google Scholar 

  • Howard, J. D. and C. A. Elders. 1970. Burrowing patterns of haustoriid amphipods from Sapelo Island, Georgia. In T. P. Crimes and J. C. Harper (eds.), Trace fossils. Geol. Jour., Spec. Issue 3:243–262.

    Google Scholar 

  • Jacobsen, V. H. 1967. The feeding of the lugworm, Arenicola marina (L.). Quantitative studies. Ophelia, 4:91–109.

    Google Scholar 

  • Kenk, R. 1944. Ecological observations on two Puerto Rican echinoderms, Mellita lata andAstropecten marginatus. Biol. Bull., 87:177–187.

    Article  Google Scholar 

  • Knight-Jones, E. W. 1952. On the nervous system of Saccoglossus cambrensis (Enteropneusta). Royal Soc. London, Philos. Trans., Ser. B, 236:315–354.

    Article  Google Scholar 

  • Ladd, H. S. 1959. Ecology, paleontology, and stratigraphy. Science, 129:69–78.

    Article  Google Scholar 

  • Lissman, H. W. 1945. The mechanism of locomotion in gastropod molluscs. II. Kinetics. Jour. Experiment. Biol., 22:37–50.

    Google Scholar 

  • Lunz, G. R. 1937. Notes on Callianassa major Say. Charleston (South Carolina) Museum, Leaflet 10:1–15.

    Google Scholar 

  • Mainitie, G. E. 1934. The natural history of Callianassa californiensis Dana. Amer. Midland Natur., 15:166–177.

    Article  Google Scholar 

  • Mangum, D. C. 1970. Burrowing behavior of the sea anemone Phyllactis. Biol. Bull., 138:316–325.

    Article  Google Scholar 

  • Morton, J. E. 1959. The habits and feeding organs of Dentalium entalis. Jour. Marine Biol. Assoc. United Kingdom, 38:225–238.

    Article  Google Scholar 

  • Nair, N. B. and A. D. Ansell. 1968. Characteristics of penetration of the substratum by some marine bivalve molluscs. Malacol. Soc. London, Proc., 38:179–197.

    Google Scholar 

  • Nichols, D. 1959. Changes in the chalk hearturchin Micraster interpreted in relation to living forms. Royal Soc. London, Philos. Trans., Ser. B, 242:347–437.

    Article  Google Scholar 

  • Nicol, E. A. T. 1930. The feeding mechanism, formation of the tube, and physiology of digestion in Sabella pavonina. Royal Soc. Edinburgh, Trans., 56:537–598.

    Google Scholar 

  • Nicolaisen, W. and E. Kanneworff. 1969. On the burrowing and feeding habits of the amphipods Bathyporeia pilosa Lindstrom and B. sarsi Watkin. Ophelia, 6:231–250.

    Google Scholar 

  • Ockelmann, K. W. and O. Vahl. 1970. On the biology of the polychaete Glycera alba, especially its burrowing and feeding. Ophelia, 8:275–294.

    Google Scholar 

  • Owen, G. 1961. A note on the habits and nutrition of Solemya parkinsoni (Protobranchia: Bivalvia). Microscopic. Sci., Quart. Jour., 102:15–21.

    Google Scholar 

  • Parker, G. H. and M. A. van Alstyne. 1932. Locomotor organs of Echinarachnius parma Biol. Bull., 62:195–200.

    Article  Google Scholar 

  • Pearse, A. S. 1908. Observations on the behavior of the holothurian, Thyone briareus (Le-Seur). Biol. Bull., 15:259–288.

    Article  Google Scholar 

  • Peebles, F. and D. L. Fox. 1933. The structure, functions and general reactions of the marine sipunculid worm, Dendrostoma zostericola. Scripps Inst. Oceanogr., Bull., Tech. Ser., 3:201–234.

    Google Scholar 

  • Reineck, H.-E. 1957. Über Wühlgänge im Watt und deren Abänderung durch ihre Bewohner. Paläont. Zeitschr., 31:32–34.

    Google Scholar 

  • Reineck, H.-E. 1958. Wühlbau-Gefüge in Abhängigkeit von Sediment-Umlagerungen. Senckenbergiana Leth., 39:1–23, 54–56.

    Google Scholar 

  • Reineck, H.-E. 1968. Lebensspuren von Herzigeln. Senckenbergiana Leth., 49:311–319.

    Google Scholar 

  • Reineck, H.-E et al. 1967. Das Schlickgebiet südlich Helgoland als Beispiel rezenter Schelfablagerungen. Senckenbergiana Leth., 48:219–275.

    Google Scholar 

  • Rhoads, D. C. 1963. Rates of sediment reworking by Yoldia limatula in Buzzards Bay, Massachusetts, and Long Island Sound. Jour. Sed. Petrol., 33:723–727.

    Google Scholar 

  • Rhoads, D. C. and D. J. Stanley. 1965. Biogenic graded bedding. Jour. Sed. Petrol., 35:956–963.

    Google Scholar 

  • Rhoads, D. C. and D. K. Young. 1970. The influence of deposit-feeding organisms on sediment stability and community trophic structure. Jour. Marine Res., 28:150–178.

    Google Scholar 

  • Risk, M. J. 1973. Silurian echiuroids: possible feeding traces in the Thorold Sandstone. Science, 180:1285–1287.

    Article  Google Scholar 

  • Ritter, W. E. 1902. The movements of the Enteropneusta and the mechanism by which they are accomplished. Biol. Bull., 3:255–261.

    Article  Google Scholar 

  • Sankolli, K. N. 1965. On the occurrence of Thalassina anomala (Herbst.), a burrowing crustacean in Bombay waters, and its burrowing methods. Jour. Bombay Nat. Hist. Soc., 60:600–605.

    Google Scholar 

  • Schäfer, W. 1952. Biogene Sedimentation im Gefolge von Bioturbation. Senckenbergiana, 33:1–12.

    Google Scholar 

  • Schäfer, W. 1956. Wirkungen der Benthos-Organismen auf den jungen Schichtverband. Senckenbergiana Leth., 37:183–263.

    Google Scholar 

  • Schäfer, W. 1972. Ecology and palaeoecology of marine environments. Edinburgh, Oliver & Boyd, and Chicago, III., Univ. Chicago Press, 568 p.

    Google Scholar 

  • Seilacher, A. 1951. Der Röhrenbau von Lanice conchilega (Polychaeta). Senckenbergiana, 32:267–280.

    Google Scholar 

  • Seymour, M. K. 1971. Burrowing behavior in the European lugworm Arenicola marina (Polychaeta: Arenicolidae). Jour. Zool., 164:93–132.

    Article  Google Scholar 

  • Shinn, E. A. 1968. Burrowing in recent lime sediments of Florida and the Bahamas. Jour. Paleont., 42:879–894.

    Google Scholar 

  • Stanley, S. M. 1970. Relation of shell form to life habits in the Bivalvia. Geol. Soc. America, Mem. 125, 296 p.

    Google Scholar 

  • Thompson, R. K. 1972. Functional morphology of the hind-gut gland of Upogebia pugettensis (Crustacea, Thalassinidea) and its role in burrow construction. Unpubl. Ph.D. Dissert., Univ. California, Berkeley, 202 p.

    Google Scholar 

  • Trueman, E. R. 1966a. The fluid dynamics of the bivalve molluscs, Mya and Margaritifera. Jour. Experiment. Biol., 45:369–382.

    Google Scholar 

  • Trueman, E. R. 1966b. The mechanism of burrowing in the polychaete worm, Arenicola marina (L.). Biol. Bull., 131:369–377.

    Article  Google Scholar 

  • Trueman, E. R. 1967. The dynamics of burrowing in Ensis (Bivalvia). Royal Soc. London, Proc., Ser. B, 166:459–476.

    Article  Google Scholar 

  • Trueman, E. R. 1968a. The locomotion of the freshwater clam Margaritifera margaritifera (Unionacea: Margaritanidae). Malacologia, 6:401–410.

    Google Scholar 

  • Trueman, E. R. 1968b. The burrowing activities of bivalves. Zool. Soc. London, Symp., 22:167–186.

    Google Scholar 

  • Trueman, E. R. 1968c. A comparative account of the burrowing process of species of Mactra and of other bivalves. Malacol. Soc. London, Proc., 38:139–151.

    Google Scholar 

  • Trueman, E. R. 1968d. The mechanism of burrowing of some naticid gastropods in comparison with that of other molluscs. Jour. Experiment. Biol., 48:663–678.

    Google Scholar 

  • Trueman, E. R. 1968e. The burrowing process of Dentalium (Scaphopoda). Jour. Zool., 154:19–27.

    Article  Google Scholar 

  • Trueman, E. R. 1970. The mechanism of burrowing of the mole crab, Emerita.Jour. Experiment. Biol., 53:701–710.

    Google Scholar 

  • Trueman, E. R. and A. D. Ansell. 1969. The mechanisms of burrowing into soft substrata by marine animals. Oceanogr. Marine Biol., Ann. Rev., 7:315–366.

    Google Scholar 

  • Trueman, E. R. et al. 1966. The dynamics of burrowing of some common littoral bivalves. Jour. Experiment. Biol., 44:469–492.

    Google Scholar 

  • Trusheim, F. 1930. Sternförmige Fährten von Corophium Senckenbergiana, 12:254–260.

    Google Scholar 

  • Vies, F. 1906. Notes sur la locomotion du Pectunculus glycymeris Lk. Soc. Zool. France, Bull., 31:114–117.

    Google Scholar 

  • Vies, F. 1913. Observations sur la locomotion d’Otina otis Turt. Remarques sur la progression des Gastéropodes. Soc. Zool. France, Bull., 38:242–250.

    Google Scholar 

  • von Boletzky, S. and M. V. von Boletzky. 1970. Das Eingraben in Sand bei Sepiola und Sepietta (Mollusca, Cephalopoda). Rev. Suisse Zool., 77:536–548.

    Google Scholar 

  • Watkin, E. E. 1940. The swimming and burrowing habits of the amphipod Urothoë marina(Bate). Royal Soc. Edinburgh, Proc., 60:271–280.

    Google Scholar 

  • Wells, G. P. 1945. The mode of life of Arenicola marina L. Jour. Marine Biol. Assoc. United Kingdom, 26:170–207.

    Article  Google Scholar 

  • Willem, V. 1927. Observations sur la locomotion des Actinies. Acad. Royale Sci., Lettres, Beaux-Arts Belgique, Bull., 13:630–650.

    Google Scholar 

  • Yonge, C. M. 1937. The biology ofAporrhais pes-pelecani (L.) and A. serresiana . Jour. Marine Biol. Assoc. United Kingdom, 21:687–704.

    Article  Google Scholar 

  • Yonge, C. M. 1939. The protobranchiate mollusca; a functional interpretation of their structure and evolution. Royal Soc. London, Philos. Trans., Ser. B, 230:79–147.

    Article  Google Scholar 

  • Yonge, C. M. 1946a. On the habits and adaptations of Aloidis (Corbula) gibba. Jour. Marine Biol. Assoc. United Kingdom, 26:358–376.

    Article  Google Scholar 

  • Yonge, C. M. 1946b. On the habits ofTurritella communisRisso. Jour. Marine Biol. Assoc. United Kingdom, 26:377–380.

    Article  Google Scholar 

  • Ziegelmeier, E. 1952. Beobachtungen über den Röhrenbau von Lanice conchilega(Pallas) im Experiment und am natürlichen Standort. Helgoländer Wiss. Meeresuntersuch., 4:107–129.

    Article  Google Scholar 

  • Ziegelmeier, E. 1969. Neue Untersuchungen über die Wohnröhren-Bauweise von Lanice conchilega (Polychaeta, Sedentaria). Helgoländer Wiss. Meeresuntersuch., 19:216–229.

    Article  Google Scholar 

  • Zuckerkandl, E. 1950. Coelomic pressures in Sipunculus nudus.Biol. Bull., 98:161–173.

    Article  Google Scholar 

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Elders, C.A. (1975). Experimental Approaches in Neoichnology. In: Frey, R.W. (eds) The Study of Trace Fossils. Springer, Berlin, Heidelberg. https://doi.org/10.1007/978-3-642-65923-2_22

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