1887

Abstract

Catabolism of -methionine by strain B SPAO led to the formation of ethylene nas a secondary metabolite (ethylenogenesis). Methionine was initially deaminated by a transamination reaction to the 2-oxo acid 2-oxo-4-methylthiobutyric acid (KMBA) which was then converted to ethylene. The utilization of -methionine as an additional nitrogen source was investigated by examining ethylene synthesis under different nitrogen supply conditions. Ethylene formation in batch culture was unaffected by the concentration of the precursor -methionine in the medium although increasing concentrations of NHCl resulted in progressively less ethylene formation. Cultures grown without -methionine did not produce ethylene but were able to synthesize ethylene when -methionine or KMBA was provided. Addition of -tyrosine to batch cultures reduced the yield of ethylene after 42 h by 54%. Under these conditions the maximum transient level of KMBA was reduced by 32% and occurred later compared to when -methionine was the only amino acid supplement. Continuous cultures grown under ammonia limitation produced both ethylene and KMBA. In contrast, when glucose was limiting, neither of these metabolites were produced. Cells harvested from continuous cultures grown under glucose or ammonia limitation were able to synthesize ethylene from either -methionine or KMBA although their capacity for ethylene synthesis (ethylenogenic capacity) was optimal under ammonia limitation (C:N ratio = 20).

Loading

Article metrics loading...

/content/journal/micro/10.1099/00221287-135-6-1489
1989-06-01
2024-05-12
Loading full text...

Full text loading...

/deliver/fulltext/micro/135/6/mic-135-6-1489.html?itemId=/content/journal/micro/10.1099/00221287-135-6-1489&mimeType=html&fmt=ahah

References

  1. Adams D.D., Yang S.F. 1981; Ethylene the gaseous plant hormone: mechanism and regulation of biosynthesis.. Trends in Biochemical Sciences 6:161–164
    [Google Scholar]
  2. Billington D.C., Golding B.T., Primrose S.B. 1979; Biosynthesis of ethylene from methionine. Biochemical Journal 182:827–836
    [Google Scholar]
  3. Bradford M.M. 1976; A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Analytical Biochemistry 72:248–254
    [Google Scholar]
  4. Brown C.M. 1976; Nitrogen and metabolism in bacteria and fungi. In Continuous Culture 6 Applications and New Fields,pp. 277–314 Dean A. C.R., Ellwood D.C., Evans C.G.T., Melling J. Edited by London: Ellis Horwood/Society for Chemical Industry;
    [Google Scholar]
  5. Brown C.M., Macdonald-Brown D.S., Meers J.L. 1974; Physiological aspects of microbial inorganic nitrogen metabolism. Advances in Microbial Physiology 114:1–52
    [Google Scholar]
  6. Bunch A.W., Harris R. 1986; The manipulation of microorganisms for the production of secondary metabolites. In Biotechnology and Genetic Engineering Reviews pp. 117–144 Russell G.E. Edited by Newcastle, UK: Intercept;
    [Google Scholar]
  7. Collier R.H., Kohlaw G. 1972; Non-identity of the aspartate and the aromatic aminotransferase components of transaminase A in Escherichia coli. Journal of Bacteriology 112:365–371
    [Google Scholar]
  8. Gardner W.S., Miller W.H. 1980; Reverse phase liquid chromatographic analysis of amino acids after reaction with O-phthalaldialdehyde. Analytical Biochemistry 101:61–65
    [Google Scholar]
  9. Gelfand D.H., Steinberg R.A. 1977; Escherichia coli mutants defective in the aspartate and aromatic amino acid aminotransferases. Journal of Bacteriology 130:429–440
    [Google Scholar]
  10. Harder B.C., Dijkhuizen L. 1976; Mixed Substrate Utilisation. In Continuous Culture 6 Applications and New Fields,pp. 277–314 Dean A.C.R., Ellwood D.C., Evans C. G.T., Melling J. Edited by London: Ellis Horwood/Society for Chemical Industry;
    [Google Scholar]
  11. Hemming B.C., Gubler C.J. 1979; High-pressure liquid chromatography of a-keto acid 2,4-dinitro-phenylhydrazones. Analytical Biochemistry 92:31–40
    [Google Scholar]
  12. Hueting S., Tempest D.W. 1979; Influence of the glucose input concentration on the kinetics of metabolite production by Klebsiella aerogenes NCTC 418 growing in chemostat culture in potas-sium-or ammonia-limited environments. Archives of Microbiology 123:189–194
    [Google Scholar]
  13. Ince J.E., Knowles C.J. 1985; Ethylene formation by cultures of Escherichia coli. Archives of Microbiology 141:209–213
    [Google Scholar]
  14. Ince J.E., Knowles C.J. 1986; Ethylene formation by cell free extracts of Escherichia coli. Archives of Microbiology 146:151–158
    [Google Scholar]
  15. Ito S., Nakamura T., Eguchi Y. 1976; Purification and characterisation of methioninase from Pseudomonas putida. Journal of Biochemistry 79:1263–1272
    [Google Scholar]
  16. Jensen R.A., Colhoun D.H. 1981 Intracellular roles of microbial aminotransferases: overlap enzymes across different biochemical pathways, CRC Critical Reviews in Microbiology 89:229–266
    [Google Scholar]
  17. Kadner R.J. 1977; Transport and utilization of D-methionine and other methionine sources in Escherichia coli. Journal of Bacteriology 129:207–216
    [Google Scholar]
  18. Kadner R.J., Watson W.J. 1974; Methionine transport in Escherichia coli: physiological and genetic evidence for two uptake systems. Journal of Bacteriology 119:401–409
    [Google Scholar]
  19. Kavanagh B.M., Cole J.A. 1976; The regulation of nitrogen metabolism in Escherichia coli. In: Continuous Culture 6 Applications and New Fields, pp. 184–194 Dean A. C.R., Ellwood D.C., Evans C.G.T., Melling J. Edited by London: Ellis Horwood/Society for Chemical Industry;
    [Google Scholar]
  20. Kustu S.G., Mcfarland N.C., Hin S.P., Esmon B., Ferro-Luzzi ames G. 1979; Nitrogen control in Salmonella typhimurium: coregulation of synthesis of glutamine synthetase and amino acid transport systems. Journal of Bacteriology 138:218–234
    [Google Scholar]
  21. Lynch J.M., Harper S.H.T. 1974; Formation of ethylene by a soil fungus. Journal of General Microbiology 80:187–195
    [Google Scholar]
  22. Neijssel O.M., Tempest D.W. 1979; The physiology of metabolite over-production. Symposia of the Society for General Microbiology 29:53–82
    [Google Scholar]
  23. Powell J.T., Morrison J.F. 1978; The purification and properties of the aspartate aminotransferase and aromic amino acid aminotransferase from Escherichia coli. European Journal of Biochemistry 87:391–400
    [Google Scholar]
  24. Primrose S.B. 1977; Evaluation of the role of methional, 2-keto 4-methiobutyric acid and peroxidase in ethylene formation by Escherichia coli. Journal of General Microbiology 98:519–528
    [Google Scholar]
  25. Primose S.B. 1979; Ethylene and agriculture: the role of the microbe. Journal of Applied Microbiology 46:1–25
    [Google Scholar]
  26. Sakamoto N., Kotre A.M., Savageau M.A. 1975; Glutamate dehydrogenases from Escherichia coli: purification and properties. Journal of Bacteriology 124:775–783
    [Google Scholar]
  27. Tanaka H., Esaki N., Soda K. 1976; Purification and properties of methioninase from Pseudomonas ovalis. FEBS Letters 66:307–311
    [Google Scholar]
http://instance.metastore.ingenta.com/content/journal/micro/10.1099/00221287-135-6-1489
Loading
/content/journal/micro/10.1099/00221287-135-6-1489
Loading

Data & Media loading...

This is a required field
Please enter a valid email address
Approval was a Success
Invalid data
An Error Occurred
Approval was partially successful, following selected items could not be processed due to error