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Yeast Biomass Production: a New Approach in Glucose-limited Feeding Strategy

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Specialty Microbiology
Date 2013 Dec 3
PMID 24294254
Citations 6
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Abstract

The aim of this work was to implement experimentally a simple glucose-limited feeding strategy for yeast biomass production in a bubble column reactor based on a spreadsheet simulator suitable for industrial application. In biomass production process using Saccharomyces cerevisiae strains, one of the constraints is the strong tendency of these species to metabolize sugars anaerobically due to catabolite repression, leading to low values of biomass yield on substrate. The usual strategy to control this metabolic tendency is the use of a fed-batch process in which where the sugar source is fed incrementally and total sugar concentration in broth is maintained below a determined value. The simulator presented in this work was developed to control molasses feeding on the basis of a simple theoretical model in which has taken into account the nutritional growth needs of yeast cell and two input data: the theoretical specific growth rate and initial cell biomass. In experimental assay, a commercial baker's yeast strain and molasses as sugar source were used. Experimental results showed an overall biomass yield on substrate of 0.33, a biomass increase of 6.4 fold and a specific growth rate of 0.165 h(-1) in contrast to the predicted value of 0.180 h-1 in the second stage simulation.

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References
1.
Jones K, Kompala D . Cybernetic model of the growth dynamics of Saccharomyces cerevisiae in batch and continuous cultures. J Biotechnol. 1999; 71(1-3):105-31. DOI: 10.1016/s0168-1656(99)00017-6. View

2.
Dynesen J, Smits H, Olsson L, Nielsen J . Carbon catabolite repression of invertase during batch cultivations of Saccharomyces cerevisiae: the role of glucose, fructose, and mannose. Appl Microbiol Biotechnol. 1998; 50(5):579-82. DOI: 10.1007/s002530051338. View

3.
Randez-Gil F, Sanz P, Prieto J . Engineering baker's yeast: room for improvement. Trends Biotechnol. 1999; 17(6):237-44. DOI: 10.1016/s0167-7799(99)01318-9. View

4.
Hensing M, Rouwenhorst R, Heijnen J, van Dijken J, Pronk J . Physiological and technological aspects of large-scale heterologous-protein production with yeasts. Antonie Van Leeuwenhoek. 1995; 67(3):261-79. DOI: 10.1007/BF00873690. View

5.
Sonnleitner B, Kappeli O . Growth of Saccharomyces cerevisiae is controlled by its limited respiratory capacity: Formulation and verification of a hypothesis. Biotechnol Bioeng. 1986; 28(6):927-37. DOI: 10.1002/bit.260280620. View