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The effects of 3-amino-1,2,4-triazole on the growth of sporelings of marine red Algae

Published online by Cambridge University Press:  11 May 2009

A. D. Boney
Affiliation:
Department of Chemistry and Biology, Plymouth College of Technology1

Extract

The cell production of sporelings of five species of marine red algae is inhibited by 3-amino-i,2,4-triazole (3AT).

Results show that short-term immersions in culture medium containing 3AT have a lasting effect on the growth of sporelings

This growth inhibitory effect is reversed by addition of adenine.

Protracted contact with 3AT results in some chlorosis of the sporeling

The growth inhibitory effects of 3AT are more marked with sporelings of intertidal red algae than with sublittoral species.

Type
Research Article
Copyright
Copyright © Marine Biological Association of the United Kingdom 1963

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References

Boney, A. D. 1960 a. The spore output of Antithamnion plumula over a number of days. Brit, phycol. Bull., Vol. 2, pp. 37–8.Google Scholar
Boney, A. D. 1960b. Nurture of a fruiting Antithamnion tuft and the physiological condition of the liberated spores. Brit, phycol. Bull., Vol. 2, pp. 38–9.Google Scholar
Boney, A. D. 1962. Observations on the rate of growth of the Hymenoclonium stage of Bonnemaisonia asparagoides (Woodw.) Ag. Brit, phycol. Bull., Vol. 2, pp. 172–3.CrossRefGoogle Scholar
Boney, A. D. & Corner, E. D. S., 1959. Application of toxic agents in the study of the ecological resistance of intertidal red algae. J. mar. biol. Ass. U.K., Vol. 38, pp. 267–75.CrossRefGoogle Scholar
Boney, A. D. 1960. A possible function of phycoerythrin in intertidal red algae. Nature, Lond., Vol. 188, pp. 1042–3.CrossRefGoogle Scholar
Boney, A. D. 1962 a. The effect of light on the growth of sporelings of the intertidal red alga Plumaria elegans (Bonnem.) Schm. J. mar. biol. Ass. U.K., Vol. 42, pp. 6592.CrossRefGoogle Scholar
Boney, A. D. 1962 b. On the effects of some carcinogenic hydrocarbons on the growth of sporelings of marine red algae. J. mar. biol. Ass. U.K., Vol. 42, pp. 579–85.CrossRefGoogle Scholar
Boney, A. D. 1963. The effect of light on the growth of sporelings of Antithamnion plumula (Ellis) Thur. and Brongniartella byssoides (Good, et Woodw.) Schm. J. mar. biol. Ass. U.K., Vol. 43, pp. 319–25.CrossRefGoogle Scholar
Boney, A. D., Corner, E. D. S. & Sparrow, B. W. P., 1959. The effects of various poisons on the growth and viability of sporelings of the red alga Plumaria elegans (Bonnem.) Schm. Biochem. Pharmacol., Vol. 2, pp. 3749.CrossRefGoogle Scholar
Brody, M. & Vatter, A. E., 1959. Observations on cellular structure of Porphyridium cruentum. J. biophys. biochem. Cytol., Vol. 5, pp. 289–94.CrossRefGoogle ScholarPubMed
Colman, J., 1933. The nature of the intertidal zonation of plants and animals. J. mar. biol. Ass. U.K., Vol. 18, pp. 435–76.CrossRefGoogle Scholar
Droop, M. R., 1955. Some new supra-littoral Protista. J. mar. biol. Ass. U.K., Vol. 34, pp. 233–45.CrossRefGoogle Scholar
Frederick, J. F. & Gentile, A. C., 1959. The effect of 3-amino 1,2,4, triazole on algal phosphorylase (Abstr.). Plant Physiol., Vol. 34 (Suppl.), p. xiv.Google Scholar
Haxo, F. T. & Blinks, L. R., 1950. Photosynthetic action spectra of marine algae. J. gen. Physiol., Vol. 33, pp. 389422.CrossRefGoogle ScholarPubMed
Herbert, R. A. & Linck, A. J., 1958. Studies on the role of phosphorus in the action of 3-amino 1,2,4-triazole. Abstr. Weed Soc. Am., pp. 36–7.Google Scholar
Lebedev, S. I., 1958. Phyllophora nervosa biological pecularities. Abstr. Third International Seaweed Symposium, pp. 24–5.Google Scholar
Miller, C. S. & Hall, W. C., 1957. Effects of amino-triazole salts and derivatives on cotton defoliation, growth inhibition and respiration. Weeds, Vol. 5, pp. 218–26.CrossRefGoogle Scholar
Pyfrom, H. T., Appleman, D. & Heim, W. G., 1957. Catalase and chlorophyll depression by 3-amino 1,2,4-triazole. Plant Physiol., Vol. 32, pp. 674–76.CrossRefGoogle Scholar
Rogers, B. J., 1957. Chlorosis in corn as induced by the herbicide 3-amino 1,2,4-triazole. (Abstr.) Plant Physiol., Vol. 32. (Suppl.), p. vi.Google Scholar
Russell, J., 1957. Amino triazole interactions in the growth of timothy grass seedlings. Canad. J. Bot., Vol. 35, pp. 409–24.CrossRefGoogle Scholar
Sund, K. A., 1960. Reduction of 3-amino 1,2,4-triazole phytotoxicity in tomato plants. Agr. Food Chem., Vol. 8, pp. 210–12.CrossRefGoogle Scholar
Wolf, F. T., 1960. Influence of amino-triazole on chloroplast pigments of wheat seedlings. Nature, Land., Vol. 188, pp. 164–65.CrossRefGoogle Scholar
Wolf, F. T., 1962. Growth inhibition of Chlorella induced by 3-amino 1,2,4-triazole and its reversal by purines. Nature, Lond., Vol. 193, pp. 901–2.CrossRefGoogle ScholarPubMed
Wort, D. J. & Shrimpton, D. H., 1958. Effect of foliar applied amino triazole on the photosynthesis and respiration of leaves of bean and wheat, and on cytochrome oxidase activity in wheat. Res. Rep. National Weed Committee, Rep. Dep. Agric. Can., pp. 124–27.Google Scholar
Wort, D. J. & Loughman, B. C., 1961. The effect of 3-amino 1,2,4-triazole on the uptake, retention and utilization of labelled phosphorus by young barley plants. Canad. J. Bot., Vol. 39, pp. 339–51.CrossRefGoogle Scholar