Login

Join for Free!
17779 members
table of contents table of contents

The 3,4-dihydroxy phenyl L-alanine (L-dopa) is a drug of choice for Parkinson's …


Biology Articles » Biotechnology » High performance microbiological transformation of L-tyrosine to L-dopa by Yarrowia lipolytica NRRL-143 » References

References
- High performance microbiological transformation of L-tyrosine to L-dopa by Yarrowia lipolytica NRRL-143

  1. Ratledge C: Yeast physiology – a micro-synopsis.

    Bioproc Biosys Engin J 1990, 6:195-203.

  2. Fickers P, Nicaud JM, Gaillardin C, Destain J, Thonart P: Carbon and nitrogen sources modulate lipase production in the Yarrowia lipolytica.

    J Appl Microbiol 2004, 96:742-749.

  3. Fickers P, Fudalej F, Nicaud JM, Destain J, Thonart P: Selection of new over-producing derivatives for the improvement of extracellular lipase production by the non-conventional yeast Yarrowia lipolytica.

    J Biotechnol 2005, 115:379-386.

  4. Scioli C, Vollaro L: The use of Yarrowia lipolytica to reduce pollution in olive mill wastewaters.

    Water Res 1997, 31:2520-2524.

  5. Papanikolaou S, Muniglia L, Chevalot I, Aggelis G, Marc I: Yarrowia lipolytica as a potential producer of citric acid from raw glycerol.

    J Appl Microbiol 2002, 92:737-744.

  6. Papanikolaou S, Aggelis G: Selective uptake of fatty acids by the yeast Yarrowia lipolytica.

    Eur J Lipid Sci Technol 2003, 105:651-655.

  7. Haq I, Ali S, Qadeer MA: Biosynthesis of L-dopa by Aspergillus oryzae.

    Bioresour Technol 2002, 85:25-29.

  8. Koyanagi T, Katayama T, Suzuki H, Nakazawa H, Yokozeki K, Kumagai H: Effective production of 3,4-dihydroxyphenyl-L-alanine (L-dopa) with Erwinia herbicola cells carrying a mutant transcriptional regulator TyrR.

    J Biotechnol 2005, 115:303-306.

  9. Para G, Rifai S, Baratti J: Production of L-dopa from pyrocatechol and DL-serine by bioconversion using immobilized Erwinia herbicola cells.

    Biotechnol Lett 2004, 6:703-708.

  10. Raju BG, Rao GH, Ayyanna C: Bioconversion of tyrosine to melanin using Aspergillus spp.

    Ind J Biotechnol 1994, 23:231-235.

  11. James P, Fling G: Tyrosinase activity of different fungal strains.

    Biochim Biophys Acta 2001, 112:98-103.

  12. Gerdemann C, Christoph E, Krebs B: The crystal structure of catechol oxidase: New insight into the function of type-3 copper proteins.

    Account Chem Res 2002, 35:183-191.

  13. Sanchez-Ferrer A, Rodriguez-Lopez JN, Garcia-Canovas F, Garcia-Carmona F: Tyrosinase: A comprehensive review of its mechanism.

    Biochim Biophys Acta 1995, 1247:1-11.

  14. Soler-Rivas C, Jolivet S, Arpin N, Olivier JM, Wihers HJ: Biochemical and physiological aspects of brown blotch disease of Agaricus bisporus.

    FEMS Microbiol Rev 1999, 23:591-614.

  15. Duran N, Rosa MA, D'Annibale A, Gianfreda L: Applications of laccases and tyrosinases (phenoloxidases) immobilized on different supports: a review.

    Enzyme Microb Technol 2002, 6179:1-25.

  16. Carvalho GMJ, Alves TLM, Freire DMG: L-dopa production by immobilized tyrosinase.

    Appl Biochem Biotechnol 2000, 84-86:791-800. 791–800

  17. Seetharam G, Saville BA: L-dopa production from tyrosinase immobilized on zeolite.

    Enzyme Microb Technol 2002, 31:747-753.

  18. Krastanov A: Removal of phenols from mixtures by co-immobilized laccase/tyrosinase and polyclar adsorption.

    J Ind Microbiol Biotechnol 2000, 24:383-388.

  19. Ensuncho L, Alvarez-Cuenca M, Legge RL: Removal of aqueous phenol using immobilized enzymes in a bench scale and pilot scale three-phase fluidized bed reactor.

    Bioproc Biosyst Eng 2005, 27:185-191.

  20. Wada S, Ichikawa H, Tatsumi K: Removal of phenols with tyrosinase immobilized on magnetite.

    Water Sci Technol 1992, 26:2057-2059.

  21. Munjal N, Sawhney SK: Stability and properties of mushroom tyrosinase entrapped in alginate, polyacrylamide and gelatin gels.

    Enzyme Microb Technol 2002, 30:613-619.

  22. Hamann MCJ, Saville BA: Enhancement of tyrosinase stability by immobilization on Nylon-66.

    Food Bioprod Proc 1996, 74:47-52.

  23. Haq I, Ali S, Qadeer MA, Iqbal J: Indusive effect of cresoquinone on microbiological transformation of L-tyrosine to 3,4-dihydroxy phenyl L-alanine by Aspergillus oryzae NG-11P1.

    Appl Microbiol Biotechnol 2003, 60:696-699.

  24. Ali S, Haq I: Innovative effect of illite on improved microbiological conversion of L-tyrosine to 3,4 dihydroxy phenyl L-alanine (L-dopa) by Aspergillus oryzae ME2 under acidic reaction conditions.

    Curr Microbiol 2006, 53:351-357.

  25. Haneda K, Watanabe S, Takeda P: Melanogenesis by microorganisms.

    J Ferment Technol 1973, 51:398-406.

  26. Halaouli S, Asther M, Sigoillot JC, Hamdi M, Lomascolo A: Fungal tyrosinases: new prospects in molecular characteristics, bioengineering and biotechnological applications.

    J Appl Microbiol 2006, 100:219-232.

  27. Rosazza KC, Paul GM, Wolf S: Microbial sources of tyrosinases.

    Biotechnol Lett 1995, 16:210-215.

  28. Rarveen P, Michael SJ: Radiation induced effects on dopamine activity.

    J Anal Chem 1992, 67:185-187.

  29. Kandaswami C, Vaidyanathan CS: Enzymatic assay of tyrosinase catechol oxidase activity.

    J Biol Chem 1973, 248:4035.

  30. Arnow LE: Colorimeteric determination of the components of 3,4-dihydroxyphenylalanine – tyrosine mixtures.

    J Biol Chem 1937, 118:531-537.

  31. Bradford MM: A rapid method for the quantification of program quantities of protein utilizing the principle of protein-dye binding.

    Anal Biochem 1976, 72:248-254.

  32. Pirt SJ: Principles of microbes and cell cultivation. 2nd edition. Blackwell Scientific Corporation, London; 1975:115-116.

  33. Snedecor G, Cochran WG: Statistical methods. 7th edition. Iowa State University; 1980:80-86.


rating: 0.00 from 0 votes | updated on: 12 Dec 2007 | views: 1032 |

Rate article:







excellent!bad…