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Enzymes of purine metabolism in the diatom, Phaeodactylum tricornutum

Published online by Cambridge University Press:  11 May 2009

N. Shah
Affiliation:
Department of Botany and Microbiology, University College of Swansea, Swansea, SA PP
P. J. Syrett
Affiliation:
Department of Botany and Microbiology, University College of Swansea, Swansea, SA PP

Extract

Cell-free extracts of Phaeodactylum tricornutum contained a methyltransferase which catalysed the methylation of guanine or hypoxanthine by 5–adenosyl-methionine. The product ofthe reaction appeared to be a methylhypoxanthine irrespective of whether guanine or hypoxanthine was substrate. This enzyme activity (per unit protein) trebled during 6 h of nitrogen deprivation. It is suggested that this enzyme is responsible for the methylation of guanine and hypoxanthine when these are taken up by nitrogen-deprived intact cells. Uricase, allantoinase and allantoicase were present in cells incubated with guanine, hypoxanthine, uric acid or allantoin;these activities did not appear during nitrogen-deprivation. Crude cell-free extracts containedaninhibitor of uricase and activity could be demonstrated only after ammonium sulphate precipitation of protein. When these three enzymes were induced by incubation with guanine, their order of appearance was identical to the order in which they operate in purine catabolism, namely (i) uricase (ii) allantoinase (iii) allantoicase. Guanine deaminase, xanthine oxidase and xanthine dehydrogenase activities were not detected irrespective of whether cells were nitrogen-deprivedor incubated with purine.

Type
Research Article
Copyright
Copyright © Marine Biological Association of the United Kingdom 1984

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References

REFERENCES

Ammann, E. C. B. & Lynch, V. H. 1964. Purine metabolism by unicellular algae. II. Adenine, hypoxanthine, and xanthine degradation by Chlorellapyrenoidosa. Biochimica et biophysica acta, 87. 370379.Google Scholar
Antia, N. J.Berland, B. R.Bonin, D. J. & Maestrini, S. Y. 1980. Allantoin as nitrogen source for growth of marine benthic microalgae. Phycologia, 19, 103109.CrossRefGoogle Scholar
Dixon, M. & Webb, E. C 1958. Enzymes. 509 pp. London: Longmans.Google ScholarPubMed
Gooday, G. A. 1970. A physiological comparison of the symbiotic algaPlatymonas convoluta and its free-living relatives. Journal of the Marine Biological Association of the United Kingdom, 50, 199208.CrossRefGoogle Scholar
Mizusaki, S.Tanabe, Y.Noguchi, M. & Tamaki, E. 1971. Phytochemical studies on tobacco alkaloids. XIV. Occurrence and properties of putrescine N-methyltransferase in tobacco roots. Plant and Cell Physiology, 12, 633640.Google Scholar
Reinert, W. R. & Marzluf, G. A. 1975. Regulation of the purine catabolic enzymes in Neurospora crassa. Archives of Biochemistry and Biophysics, 166, 565574.CrossRefGoogle ScholarPubMed
Shah, N. & Syrett, P. J. 1982. Uptake of guanine by the diatom Phaeodactylum tricornutum. Journal of Phycology, 18, 579587.CrossRefGoogle Scholar
Shuster, L. 1955. Guanase. In Methods in Enzymology, vol. 2 (ed. Colowick, S. P. and Kaplan, N. O.), pp. 480481. Academic Press.Google Scholar
Stirpe, F. & Corte, F.Della, 1969. The regulation of rat liver xanthine oxidase: conversion in vitro of the enzyme activity from dehydrogenase (type D) to oxidase (type O). Journal of Biological Chemistry, 244, 38553863.CrossRefGoogle ScholarPubMed
Syrett, P. J. 1981. Nitrogen metabolism of microalgae. Canadian Bulletin of Fisheries and Aquatic Sciences, no. 210, 182210.Google Scholar
Theimer, R. R. & Beevers, H. 1971. Uricase and allantoinase in glyoxysomes. Plant Physiology, 47, 246251.CrossRefGoogle ScholarPubMed
Vllleret, S. 1955. Sur la presence des enzymes des ureides glyoxyliques chez les Algues d'eau douce. Compte rendu hebdomadaire des seances de I'Academie des sciences (ser. D), 241, 9092.Google Scholar
Villeret, S. 1958. Recherches sur la presence des enzymes des ureides glyoxyliques chez les Algues marines. Compte rendu hebdomadaire des seances de I'Academie des sciences (ser. D), 246, 14521454.Google Scholar
Vogels, G. D. & Van, Derdrift, C. 1976. Degradation of purines and pyrimidines by microorganisms. Bacteriological Reviews, 40, 403468.CrossRefGoogle ScholarPubMed