Journal of Food Technology

Year: 2010
Volume: 8
Issue: 5
Page No. 204 - 210

Modulation of Palm Wine Fermentation by the Control of Carbon and Nitrogen Source on Metabolism of Saccharomyces cerevisiae

Authors : Satyabrata Ghosh, Runu Chakraborty and Utpal Raychaudhuri

References

Alexandre, H. and C. Charpentier, 1998. Biochemical aspects of stuck and sluggish fermentation in grape must. J. Ind. Microbiol. Biot., 20: 20-27.
CrossRef  |  

Ansell, R., K. Granath, S. Hohmann, J.M. Thevelein and L. Adler, 1997. The two isoenzymes for yeast NAD1-dependentglycerol 3-phosphate dehydrogenase encoded by GPD1 and GPD2 have distinct roles in osmoadaptation and redox regulation. EMBO J., 16: 2179-2187.
PubMed  |  

Bell, S.J. and P.A. Henschke, 2005. Implications of nitrogen nutrition for grapes, fermentation and wine. Aust. J. Grape Wine Res., 11: 242-295.
CrossRef  |  

Bely, M., J.M. Sablayrolles and P. Barre, 1990. Automatic detection of assimilable nitrogen deficiencies during alcoholic fermentation in enological conditions. J. Ferment. Bioeng., 70: 246-252.
CrossRef  |  

Berthels, N.J., R.R.C. Otero, F.F. Bauer, J.M. Thevelein and I.S. Pretorius, 2004. Discrepancy in glucose and fructose utilisation during fermentation by Saccharomyces cerevisiae wine yeast strains. FEMS Yeast Res., 4: 683-689.
Direct Link  |  

Bisson, L., 1999. Stuck and sluggish frmentation. Am. J. Enol. Vitic., 50: 107-119.
Direct Link  |  

Bisson, L.F. and D.G. Fraenkel, 1984. Expression of kinase-dependent Uptake in Saccharomyces cerevisiae. J. Bacteriol., 159: 1013-1017.
Direct Link  |  

Bisson, L.F., 1988. High-affinity glucose transport in Saccharomyces cerevisiae in under general glucose repression control. J. Bacteriol., 170: 4838-4845.
Direct Link  |  

Boulton, R.B., V.L. Singleton, L.F. Bisson and R.E. Kunkee, 1996. Principles and Practices of Winemaking. 1st Edn. Chapman and Hall, New York, USA., pp: 604.

Busturia, A. and R. Lagunas, 1986. In the Yeasts. Chap. 2, Vol. 3, 2nd Edn., Academic Press, New York, London.

Carlson, M., 1999. Glucose repression in yeast. Curr. Opin. Microbiol., 2: 202-207.
PubMed  |  

Chowdhury, B.R., R. Chakraborty and U.R. Chaudhuri, 2003. Modeling and simulation of diffusional mass transfer of glucose during fermentative production of pediocin AcH from Pediococcus acidilactici H. Biochem. Eng. J., 16: 237-243.
CrossRef  |  

Copper, T.G., 1982. Nitrogen Metabolism in Saccharomyces cerevisiae. In: The Molecular Biology of the Yeast Saccharomyces: Metabolism and Gene Expression, Strathen, J.N., E.W. Jones and J.B. Broach (Eds.). Cold Spring Harbor Labortary Press, New York, pp: 39-99.

Eddy, A.A., 1982. Bakers Yeast. In: The Yeasts, Rose, A.H. and J.S. Harrison (Eds.). Academic Press, New York, pp: 3490-420.

Fleet, G. and G. Heard, 1993. Yeasts Growth During Fermentation. In: Wine Microbiology and Biotechnology, Fleet, G.H. (Ed.). Harwood Academic Publishers, Camberwell, Australia, pp: 27-54.

Gacula, Jr. M.C. and J. Singh, 1984. Statistical Methods in Food and Consumer Research. 1st Edn., Academic Press, New York.

Gancedo, C., M.J. Gancedo and A. Sols, 1968. Glycerol metabolism in yeasts: Pathways of utilization and production. Eur. J. Biochem., 5: 165-172.
PubMed  |  

Grauslund, M., J.M. Lopes and B. Ronnow, 1999. Expression of GUT1, which encodes glycerol kinase in Saccharomyces cerevisiae, is controlled by the positive regulators Adr1p, Ino2p and Ino4p and the negative regulator Opi1p in acarbon source-dependent fashion. Nucleic Acid Res., 27: 4391-4398.
Direct Link  |  

Jauniaux, J.C. and M. Grenson, 1990. GAP1, the general amino acid permease gene of Saccharomyces cerevisiae. Eur. J. Biochem., 190: 39-44.
PubMed  |  

Lages, F. and C. Lucas, 1997. Physiological characterization of mediated glycerol uptake in Saccharomyces cerevisiae. Biochim. Biophys. Acta, 1322: 8-18.
CrossRef  |  

Lagunas, R., C. Domfnguez, A. Busturia and M.J. Saez, 1982. Mechanism of appearance of the pasture effect in Saccharomyces cerevisiae: Incactivatiov of sugar transport system. J. Bacteriol., 152: 19-25.

Luyten, K., J. Albertyn, W.F. Skibbe, B.A. Prior, J. Ramos, J.M. Theveiein and S. Hohmann, 1995. Fps1, a yeast member of the MIP family of channel proteins, is a facilitator for glycerol uptake and efflux and is inactive under osmotic stress. EMBO J., 14: 1360-1371.
Direct Link  |  

Magasanik, B., 1992. Regulation of Nitrogen Utilization. In: The Molecular and Cellular Biology of the Yeast Saccharomyces, Vol. 2, Jones, E.W., J.R. Pringle and J.B. Broach (Ed.). Cold Spring Harbor Laboratory Press, Cold Harbor, New York, pp: 283-317.

Ough, C.S., 1976. Ethyl carbamate in fermented beverages and foods. I. Naturally occurring ethylcarbamate. J. Agric. Food Chem., 24: 323-328.
CrossRef  |  Direct Link  |  

Pavlik, P., M. Simon., T. Schuster and H. Ruis, 1993. The glycerol kinase (GUT1) gene of Saccharomyces cerevisiae: Cloning and characterization. Curr. Genet., 24: 21-25.
PubMed  |  

Plummer, D.T., 2007. An Introduction to Practical Biochemistry. Tata McGraw-Hill Publishing Co., USA..

Ronnow, B., 1992. Glycerol utilization in Saccharomyces cerevisiae. Ph.D. Thesis, University of Copenhagen, Copenhagen, Denmark.

Salmon, J.M., 1989. Effect of sugar transport inactivation in Saccharomyces cerevisiae on sluggish and stuck enological fermentation. Applied Environ. Microbiol., 55: 953-958.
Direct Link  |  

Schutz, M. and J. Gafner, 1995. Lower fructose uptake capacity of genetically characterized strains of Sacharomyces bayanus compared to strains of Saccharomyces cerevisiae: A likely cause of reduced alcoholic fermentation activity. Am. J. Enol. Vitic., 46: 175-180.
Direct Link  |  

Siderius, M., O. van Wuytswinkel, K.A. Reijenga, M. Kelders and W.H. Mager, 2000. The control of intracellular glycerol in Saccharomyces cerevisiae influences osmotic stress response and resistance to increased temperature. Mol. Microbiol., 36: 1381-1390.
PubMed  |  

Sprague, G.F. and J.E. Cronan, 1977. Isolation and characterization of Saccharomyces cerevisiae mutants defective in glycerol catabolism. J. Bacteriol., 129: 1335-1342.
Direct Link  |  

Stanbrough, M. and B. Magasanik, 1995. Transcriptional and posttranslational regulation of the general amino acid permease of Saccharomyces cerevisiae. J. Bacteriol., 177: 94-102.
PubMed  |  

Verstrepen, K.J., D. Iserentant, P. Malcorps, G. Derdelinckx and P. van Dijck et al., 2004. Glucose and sucrose: Hazardous fast-food for industrial yeast. Trends Biotechnol., 22: 531-537.
PubMed  |  

Voet, D., J.G. Voet and C.W. Pratt, 2008. Fundamentals of Biochemistry: Life at the Molecular Level. 3rd Edn., John Wiley and Sons, New York.

Wang, D., Y. Xu, J. Hu and G. Zhao, 2004. Fermentation kinetics of different sugars by apple wine yeast Saccharomyces cerevisiae. J. Inst. Brew., 110: 340-346.
Direct Link  |  

Whitney, P.A. and T.G. Cooper, 1972. Urea carboxylase and allophanat hydrolyase. Two components of adenosine triphosphate: Urea amido-lyase in Saccharomyces cerevisiae. J. Biol. Chem., 247: 1349-1353.
PubMed  |  

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