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Exogenous Otoliths of Elasmobranchs

Published online by Cambridge University Press:  11 May 2009

R. Fänge
Affiliation:
Department of Zoophysiology, University of Göteborg, Göteborg Sweden

Extract

In cartilaginous fish, holocephalians and elasmobranchs, the endolymphatic system of the inner ear generally communicates with the exterior via the endolymphatic ducts. The openings of the ducts on the dorsal side of the head were known already by eighteenth-century anatomists (Retzius, 1881). In certain elasmobranchs mineral particles from the environment pass into the inner ear through the ducts. Stewart (1906) described presence of sand grains in the membranous labyrinth of the shark, Squatina. Nishio (1926) found black volcanic particles of varying sizes in the endolymphatic duct, the sacculus and the lagena of Squatina angelus and the ray, Torpedo ocellata, from the gulf of Naples.

I have studied the inner ear of two species of electric rays, Torpedo nobiliana and T. marmorata. Considerable amounts of fine sand grains are found in the endolymphatic system of both species. The mineral particles are kept together by a gelatinous material or occur free in the endolymph. The size of the sand particles varies between 10 and 400μm. The grains are white or transparent, yellow, brownish or black. Mineralogical analysis with a polarizing microscope reveals that 85–90% of the particles consist of quartz, 5–10% of calcium carbonate and less than 5% of an unidentified opaque mineral, possibly corroded felspar. The grains are irregular with rounded or sharp edges. They differ in appearance from the round or lens-shaped concentrically layered aragonite octoconia found in the labyrinth of most elasmobranchs (Retzius, 1881; Nishio, 1926). The present findings seem to be consistent with the results by Stewart (1906) and Nishio (1926) suggesting that certain psammophilous elasmobranchs lack the ability to produce calcium carbonate otoliths and compensate for this by uptake of sand grains through their endolymphatic ducts.

Type
Short Notes
Copyright
Copyright © Marine Biological Association of the United Kingdom 1982

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References

Addink, A. D. F., Swenson, E., Woodworth, R. B. & Maren, T. H., 1972. The electrolyte physiology of the endolymph in Squalus acanthias. Bulletin. Mount Desert Island Biological Laboratory, 12, 16.Google Scholar
Fange, R., Larsson, A. & Lidman, U., 1972. Fluids and jellies of the acusticolateralis system in relation to body fluids in Coryphaenoides rupestris and other fishes. Marine Biology, 17, 180185.CrossRefGoogle Scholar
Il'inskii, O. B. & Krasnikova, T. L., 1971. On the chemical composition of the fluids surrounding some mechano- and electroreceptor structures in Elasmobranchia. Journal of Evolutionary Biochemistry and Physiology, 7, 570575. [In Russian, English summary.]Google Scholar
Nishio, S., 1926. Über die Otolithen und ihre Entstehung. Archiv für Ohren-, Nasen- und Kehlkopfheilkunde, 115, 1963.CrossRefGoogle Scholar
Retzius, G., 1881. Das Gehörorgan der Wirbeltiere. I. Das Gehörorgan der Fische und Amphibien. Stockholm: Samson & Wallin.Google Scholar
Stewart, C., 1906. On the membranous labyrinths of Echinorhinus, Estracion and Rhina. Journal of the Linnean Society (Zoology), 29, 439442.Google Scholar