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Selection and evaluation of astaxanthin-overproducing mutants of Phaffia rhodozyma

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Abstract

Mutagenesis of Phaffia rhodozyma with NTG yielded a mutant with an astaxanthin content of 1688 μg (g dry biomass)-1, a cell yield coefficient of 0.47 on glucose and a maximum specific growth rate of 0.12 h-1. Re-mutation of the mutant decreased the cell yield and maximum specific growth rate but increased the astaxanthin content. The use of mannitol or succinate as carbon sources enhanced pigmentation, yielding astaxanthin contents of 1973 μg g-1 and 1926 μg g-1, respectively. The use of valine as sole nitrogen source also increased astaxanthin production, but severely decreased the maximum specific growth rate and cell yield coefficient. The optimum pH for growth of P. rhodozyma was between pH 4.5 and 5.5, whereas the astaxanthin content remained constant above pH 3.

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References

  • Abalde, J. & Fabregas, J. 1991 β-Carotene, vitamin C and vitamin E content of the marine microalga Dunaliella tertiolecta cultured with different nitrogen sources. Bioresource Technology 38, 121–125.

    Google Scholar 

  • An, G.-H., Bielich, H., Auerbach, R. & Johnson, E.A. 1991 Isolation and characterization of carotenoid hyperproducing mutants of yeast by flow cytometry and cell sorting. Biotechnology 9, 70–73.

    PubMed  Google Scholar 

  • An, G.-H. & Johnson, E.A. 1990 Influence of light on growth and pigmentation of the yeast Phaffia rhodozyma. Antonie van Leeuwenhoek; Journal of Microbiology and Serology 57, 191–203.

    Google Scholar 

  • An, G.-H., Schuman, D.B. & Johnson, E.A. 1989 Isolation of Phaffia rhodozyma mutants with increased astaxanthin content. Applied and Environmental Microbiology 55, 116–124.

    Google Scholar 

  • Ben-Amotz, A., Lers, A. & Avron, M. 1988 Stereoisomers of β-carotene and phytoene in the alga Dunaliella bardawil. Plant Physiology 86, 1286–1291.

    Google Scholar 

  • Björk, L. & Neujahr, H.Y. 1969 Stimulation of β-carotene synthesis in Blakeslea trispora by pyruvate and intermediates of the tricarboxylic acid (TCA-) cycle. Acta Chemica Scandinavica 23, 2908–2909.

    Google Scholar 

  • Fleno, B., Christensen, I. & Larsen, R. 1988 Astaxanthin-producing yeast cells, methods for their preparation and their use. Patent application no. RCT/DK88/00068 filed by Danisco Bioteknologi A/S in Copenhagen, Denmark.

  • Goodwin, T.W. 1980 Fungi. In The Biochemistry of the Carotenoids, ed Goodwin, T.W. pp. 257–283. London and New York: Chapman and Hall.

    Google Scholar 

  • Jennings, D.H. 1989 Some perspectives on nitrogen and phosphorus metabolism in fungi. In Nitrogen, Phosphorus and Sulphur Utilization by Fungi, eds Boddy, L., Marchant, R. & Read, D.J. pp. 1–32. Cambridge: Cambridge University Press.

    Google Scholar 

  • Johnson, E.A. & An, G.-H. 1991 Astaxanthin from microbial sources. Critical Reviews in Biotechnology 11, 297–326.

    Google Scholar 

  • Johnson, E.A., Conklin, D.E. & Lewis, M.J. 1977 The yeast Phaffia rhodozyma as a dietary pigment source for salmonids and crustaceans. Journal Fisheries Research Board of Canada 34, 2417–2421.

    Google Scholar 

  • Johnson, E.A. & Lewis, M.J. 1979 Astaxanthin formation by the yeast Phaffia rhodozyma. Journal of General Microbiology 115, 173–183.

    Google Scholar 

  • Johnson, E.A., Villa, T.G. & Lewis, M.J. 1980 Phaffia rhodozyma as an astaxanthin source in salmonid diets. Aquaculture 20, 123–134.

    Google Scholar 

  • Kobayashi, M., Kakizono, T. & Nagai, S. 1991 Astaxanthin production by a green alga, Haematococcus pluvialis accompanied with morphological changes in acetate media. Journal of Fermentation and Bioengineering 71, 335–339.

    Google Scholar 

  • Lewis, M.J., Ragot, N., Berlant, M.C. & Miranda, M. 1990 Selection of astaxanthin-overproducing mutants of Phaffia rhodozyma with β-ionone. Applied and Environmental Microbiology 56, 2944–2945.

    Google Scholar 

  • Lin, T.F. & Demain, A.L. 1991 Effect of nutrition of Monascus sp. on formation of red pigments. Applied Microbiology and Biotechnology 36, 70–75.

    Google Scholar 

  • Nelis, H.J. & DeLeenheer, A.P. 1989 Microbial production of carotenoids other than β-carotene. In Biotechnology of Vitamins, Pigments and Growth Factors, ed Vandamme, E.J. pp 43–80. London and New York: Elsevier Applied Science.

    Google Scholar 

  • Sedmak, J.J., Weerasinghe, D.K. & Jolly, S.O. 1990 Extraction and quantitation of astaxanthin from Phaffia rhodozyma Biotechnology Techniques 4, 107–112.

    Google Scholar 

  • VanZyl, C., Prior, B.A. & DuPreez, J.C. 1988 Production of ethanol from sugar cane bagasse hemicellulose hydrolyzate by Pichia stipitis. Applied Biochemistry and Biotechnology 17, 357–369.

    Google Scholar 

  • Weedon, B.C.L. 1971 Occurrence. In Carotenoids, ed Isler, O. pp 29–59. Basel: Birkhauser Verlag.

    Google Scholar 

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Meyer, P.S., du Preez, J.C. & Kilian, S.G. Selection and evaluation of astaxanthin-overproducing mutants of Phaffia rhodozyma . World J Microbiol Biotechnol 9, 514–520 (1993). https://doi.org/10.1007/BF00386286

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  • DOI: https://doi.org/10.1007/BF00386286

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