Hostname: page-component-5c6d5d7d68-thh2z Total loading time: 0 Render date: 2024-08-22T03:40:18.887Z Has data issue: false hasContentIssue false

Physiological studies on trematodes: calcium, magnesium and phosphorus content

Published online by Cambridge University Press:  06 April 2009

Madan M. Goil
Affiliation:
Department of Zoology, Bareilly College, Bareilly, U.P., India

Extract

1. Four trematodes, Gastrothylax crumenifer, Cotylophoron cotylophorum, Paramphistomum explanatum and Fasciola gigantica have been used for quantitative analysis of their inorganic constituents.

2. Calcium, magnesium and phosphorus content have been determined.

3. All the four trematodes contain large amounts of phosphorus (0·61–1·05%); but the amounts of calcium (0·025–0·045%) and magnesium (0·029–0·065 %) are small.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1964

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

REFERENCES

Clark, E. P. & Collip, J. B. (1925). A study of the Tisdall method for the determination of blood serum calcium with a suggested modification. J. biol. Chem. 63, 461–4.CrossRefGoogle Scholar
Denis, W. (1922). The determination of magnesium in blood plasma and serum. J. biol. Chem. 52, 411–15.CrossRefGoogle Scholar
Duval, M. & Courtois, A. (1928). Recherches sur le milieu interiéur de I'Ascaris du Cheval. C. r. Séanc. Soc. Biol. 99, 1952–3.Google Scholar
Fischer, A. (1924). Ueber den Kohlehydratstoffwechsel von Ascaris megalocephala. Biochem. Z. 144, 224–8.Google Scholar
Fiske, C. H. & Subbarow, Y. (1925). The colorimetric determination of phosphorus. J. biol. Chem. 66, 375400.CrossRefGoogle Scholar
Flury, F. (1912). Zur Chemie und Toxikologie der Ascariden. Arch. exp. Path. Pharmak. 67, 275392.CrossRefGoogle Scholar
Goil, M. M. (1957). Carbohydrate metabolism in trematode parasites. Z. Parasitenk. 18, 36–9.CrossRefGoogle ScholarPubMed
Goil, M. M. (1958 a). Fat metabolism in trematode parasites. Z. Parasitenk. 18, 320–3.CrossRefGoogle ScholarPubMed
Goil, M. M. (1958 b). Rate of oxygen consumption in trematode parasites. Z. Parasitenk. 18, 435–40.CrossRefGoogle ScholarPubMed
Goil, M. M. (1958 c). Protein metabolism in trematode parasites. J. Helminth. 32, 119–24.CrossRefGoogle ScholarPubMed
Goil, M. M. (1961 a). Physiological studies on trematodes—Fasciola gigantica, carbohydrate metabolism. Parasitology, 51, 335–7.CrossRefGoogle ScholarPubMed
Goil, M. M. (1961 b). Physiological studies on trematodes—Fasciola gigantica. Rate of oxygen consumption. Z. Parasitenk. 20, 568–71.CrossRefGoogle ScholarPubMed
Goil, M. M. (1963). Physiological studies on trematodes—surface area-body weight relationship in Cotylophoron cotylophorum and Gastrothylax crumenifer. Z. Parasitenk. 22, 514–17.CrossRefGoogle Scholar
Goodchild, C. G., Dennis, E. S. & Moore, J. D. (1962). Flame photometric studies of helminths: calcium, magnesium, potassium and sodium in Hymenolepis diminuta. Expl Parasit. 12, 107–13.CrossRefGoogle ScholarPubMed
Radke, M. G., Schneider, M. D. & Houghtaling, D. G. (1957). Dry weight, nitrogen and phosphorus content of Schistosoma mansoni. Expl Parasit. 6, 202–7.CrossRefGoogle ScholarPubMed
Reid, W. M. (1942). Certain nutritional requirements of the fowl cestode Raillietina cesticillus (Molin) as demonstrated by short periods of starvation of the host. J. Parasit. 28, 319–40.CrossRefGoogle Scholar
Rogers, W. P. (1945). Studies on the nature and properties of the perienteric fluid of Ascaris lumbricoides. Parasitology 36, 211–18.CrossRefGoogle Scholar
Rogers, W. P. & Lazarus, M. (1949). Glycolysis and related phosphorus metabolism in parasitic nematodes. Parasitology, 39, 302–14.CrossRefGoogle ScholarPubMed
Salisbury, L. F. & Anderson, R. J. (1939). Concerning the chemical composition of Cysticercus fasciolaris. J. biol. Chem. 129, 505–17.CrossRefGoogle Scholar
Schopfer, W. H. (1924). Étude de l'osmose chez les parasites intestinaux Nematodes: Ascaris. Verh. schweiz. naturf. Ges. 106, 157–8.Google Scholar
Schopfer, W. H. (1926). Recherches physico-chimiques sur les liquides de parasites (Ascaris). II. Parasitology, 18, 277–82.CrossRefGoogle Scholar
Schopfer, W. H. (1932). Recherches physico-chimiques sur le milieu intérieur de quelques parasites. Rev. suisse Zool. 39, 59194.CrossRefGoogle Scholar
Smorodinzev, I. A. & Bebeschin, K. V. (1936). Beiträge zur Chemie der Helminthen. Mitt. IV. Die Chemische Zusammensetzung des Diphyllobotrium latum. J. Biochem. Tokyo, 23, 21–2.CrossRefGoogle Scholar
Wardle, R. A. & McLeod, J. A. (1952). The Zoology of Tapeworms. Minneapolis: University of Minnesota Press.Google Scholar
Weinland, E. & von Brand, T. (1926). Beobachtungen an Fasciola hepatica (Stoffwechsel und Lebensweise). Z. vergl. Physiol. 4, 212–85.CrossRefGoogle Scholar