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The identification and estimation of acetylcholine in three parasitic nematodes (Ascaris lumbricoides, Litomosoides carinii, and the microfilariae of Dirofilaria repens)

Published online by Cambridge University Press:  06 April 2009

Helen Mellanby
Affiliation:
National Institute for Medical Research, Mill Hill, London, N.W. 7

Extract

1. Extracts made from whole nematode worms, Litomosoides carinii, and from Ascaris ‘heads’ and body wall tissue, contain a substance similar to acetylcholine.

2. In the case of extracts from Litomosoides whole worms, this substance was shown to be probably acetylcholine itself.

3. Tissue from the anterior end of Ascaris (including the nerve ring), contains about 15 times as much acetylcholine as the body wall preparations; i.e. 0·39μg./g. as compared with 0·025μg/g. of wet weight.

4. There appeared to be rather more acetylcholine present in the Litomosoides males than in the females; 0·92μg./g. as compared with 0·63μg./g. of wet weight.

5. The microfilariae of the filariid nematode of the dog, Dirofilaria repens, contain as much as 2·4;μg./g. of acetylcholine. In this respect it resembles some other motile parasites of the blood, such as trypanosomes.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1955

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References

REFERENCES

Bacq, Z. M. (1947). L'acetyloholine et l'adrenaline chez les Invertébrés. Biol. Rev. 22, 73.CrossRefGoogle Scholar
Baldwin, E. (1943). An in vitro method for the chemotherapeutic investigation of anthelminthic potency. Parasitology, 35, 89.CrossRefGoogle Scholar
Baldwin, E. & Moyle, V. (1947). An isolated nerve-muscle preparation from Ascaris lumbricoides. J. Exp. Biol. 23, 277.CrossRefGoogle ScholarPubMed
Baldwin, E. & Moyle, V. (1949). A contribution to the physiology and pharmacology of Ascaris lumbricoides from the pig. Brit. J. Pharmacol. 4, 145.Google Scholar
Bueding, E. (1952). Acetylchblinesterase activity of Schistosoma mansoni. Brit. J. Pharmacol. 7, 563.Google ScholarPubMed
Bulbring, E., Lourie, E. M. & Pardoe, U. (1949). The presence of acetylcholine in Trypanosoma rhodesiense and its absence from Plasmodium gallinaceum. Brit. J. Pharmacol. 4, 290.Google ScholarPubMed
Chang, H. C. & Gaddum, J. H. (1933). Choline esters in tissue extracts. J. Physiol. 79, 255.CrossRefGoogle ScholarPubMed
Feldberg, W. (1945). Synthesis of acetylcholine by tissue of the central nervous system. J. Physiol. 103, 367.CrossRefGoogle ScholarPubMed
Feldberg, W. & Krayer, O. (1933). Das Auftreten eines azetylcholinartigen Stoffes im Herzvenenblut von Warmblutern bei Reizung der Nervi vagi. Arch. exp. Path. Pharmak. 172, 170.CrossRefGoogle Scholar
Katz, B. (1949). Neuromuscular transmission in Invertebrates. Biol. Rev. 24, 1.CrossRefGoogle ScholarPubMed
Prosser, C. L. (1946). The physiology of nervous systems of invertebrate animals. Physiol. Rev. 26, 337.CrossRefGoogle ScholarPubMed