Biotechnology and Bioprocess Engineering

, Volume 15, Issue 2, pp 324–328 | Cite as

Long-term repeated fed-batch ethanol fermentation in aerated condition

  • Hyeon-Beom Seo
  • Ji-Hyeon Yeon
  • Myung Hoon Chung
  • Do Hyung Kang
  • Hyeon-Yong Lee
  • Kyung-Hwan Jung
Research Paper

Abstract

In this study, we attempted to assess the process stability of long-term fed-batch ethanol fermentation in the absence and presence of aeration (0.33 vvm). To examine the effect of aeration, a long-term repeated fed-batch operation was conducted for 396 h to mimic a long-term industrial bioethanol production process. In this long-term repeated fed-batch ethanol fermentation experiments, withdrawal-fill operation were conducted every 36 h for 10 repeat cycles. The whole operation was stably sustained in a quasi-steady state. The average maximal cell concentration and the average maximal ethanol production during operation were increased by 81.63 and 12.12%, respectively, when aeration was used. In addition, since aeration was carried out, the average ethanol yield slightly decreased by 4.03% and the average specific ethanol production rate decreased by 46.75% during operation. However, the average ethanol productivity increased by 17.53% when aeration was carried out. After 396 h of long-term repeated fed-batch ethanol fermentation, 1,908.9 g of ethanol was cumulatively produced when aeration was used, which was 12.47%, higher than when aeration was not used (1,697.2 g). Meanwhile, glycerol production was greatly decreased during long-term repeated fed-batch ethanol fermentation, in which the glycerol concentration in the culture broth decreased from about 34∼15 g/L. Thus, we can conclude that cell growth was greatly improved by overcoming ethanol inhibition and glycerol production was remarkably decreased when aeration was carried out, although aeration in ethanol fermentation decreased the specific ethanol production rate and ethanol yield.

Keywords

Repeated fed-batch culture aerated ethanol fermentation bioethanol production withdrawal-fill of medium 

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References

  1. 1.
    Alfenore, S., C. Molina-Jouve, S. E. Guillouet, J. -L. Uribelarrea, G. Goma, and L. Benbadis (2002) Improving ethanol production and viability of Saccharomyces cerevisiae by a vitamin feeding strategy during fed-batch process. Appl. Microbiol. Biotechnol. 60: 67–72.CrossRefGoogle Scholar
  2. 2.
    Alfenore, S., X. Cameleyre, L. Benbadis, C. Bideaux, J. -L. Uribelarrea, G. Goma, C. Molina-Jouve, and S. E. Guillouet (2004) Aeration strategy: a need for very high ethanol performance in Saccharomyces cerevisiae fed-batch process. Appl. Microbiol. Biotechnol. 63: 537–542.CrossRefGoogle Scholar
  3. 3.
    Cot, M., M. -O. Loret, J. François, and L. Benbadis (2007) Physiological behaviour of Saccharomyces cerevisiae in aerated fed-batch fermentation for high level production of bioethanol. FEMS Yeast Res. 7: 22–32.CrossRefGoogle Scholar
  4. 4.
    Furukawa, K., E. Heinzle, and I. J. Dunn (1983) Influence of oxygen on growth of Saccharomyces cerevisiae in continuous culture. Biotechnol. Bioeng. 25: 2293–2317.CrossRefGoogle Scholar
  5. 5.
    Grosz, R. and G. Stephanopoulos (1990) Physiology, biochemical, and mathematical studies of micro-aerobic continuous ethanol fermentation by Saccharomyces cerevisiae. I: hysteresis, oscillations, and maximum specific ethanol productivities in chemostat culture. Biotechnol. Bioeng. 36: 1006–1019.CrossRefGoogle Scholar
  6. 6.
    Hoppe, G. K. and G. S. Hansford (1984) The effect of microaerobic conditions on continuous ethanol production by Saccharomyces cerevisiae. Biotechnol. Lett. 6: 681–686.CrossRefGoogle Scholar
  7. 7.
    Kirsop, B. H. (1981) Aeration in fermentation for ethanol production. Enzym. Microb. Technol. 3: 375–375.CrossRefGoogle Scholar
  8. 8.
    Ryu, D. D. Y., Y. J. Kim, and J. H. Kim (1984) Effect of air supplement on the performance of continuous ethanol fermentation system. Biotechnol. Bioeng. 26: 12–16.CrossRefGoogle Scholar
  9. 9.
    Sweere, A. P. J., J. R. Mesters, L. Janse, K. Ch. A. M. Luyben, and N. W. F. Kossen (1988) Experimental simulation of oxygen profiles and their influence on baker’s yeast production: I. Onefermentor system. Biotechnol. Bioeng. 31: 567–578.CrossRefGoogle Scholar
  10. 10.
    Bai, F. W., W. A. Anderson, and M. Moo-Young (2008) Ethanol fermentation technologies from sugar and starch feedstocks. Biotechnol. Adv. 26: 89–105.CrossRefGoogle Scholar
  11. 11.
    Luong, J. H. T. (1985) Kinetics of ethanol inhibition in alcohol fermentation. Biotechnol. Bioeng. 27: 280–285.CrossRefGoogle Scholar
  12. 12.
    Marín, M. R. (1999) Alcoholic fermentation modeling: current state and perspectives. Am. J. Enol. Vitic. 50: 166–178.Google Scholar
  13. 13.
    Cardoso, H. and C. Leão (1992) Sequential inactivation of ammonium and glucose transport in Saccharomyces cerevisiae during fermentation. FEMS Microbiol. Lett. 73: 155–159.CrossRefGoogle Scholar
  14. 14.
    Gray, J. V., G. A. Petsko, G. C. Johnston, D. Ringe, R. A. Singer, and M. Werner-Washburn (2004) Sleeping beauty: quiescence in Saccharomyces cerevisiae. Microbiol. Mol. Biol. Rev. 68: 187–206.CrossRefGoogle Scholar
  15. 15.
    Herman, P. K. (2002) Stationary phase in yeast. Curr. Opin. Microbiol. 5: 602–607.CrossRefGoogle Scholar
  16. 16.
    Leão, C. and N. van Uden (1982) Effects of ethanol and other alkanols on the glucose transport system of Saccharomyces cerevisiae. Biotechnol. Bioeng. 24: 2601–2604.CrossRefGoogle Scholar
  17. 17.
    Leão, C. and N. van Uden (1984) Effects of ethanol and other alkanols on passive proton influx in the yeast Saccharomyces cerevisiae. Biochim. Biophys. Acta 774: 43–48.CrossRefGoogle Scholar
  18. 18.
    Seo, H. -B., S. S. Kim, H. -Y. Lee, and K. -H. Jung (2009) High-level production of ethanol during fed-batch ethanol fermentation with a controlled aeration rate and non-sterile glucose powder feeding of Saccharomyces cerevisiae. Biotechnol. Bioprocess Eng. 14: 591–598.CrossRefGoogle Scholar
  19. 19.
    Seo, H. -B., J. -H. Yeon, M. H. Jeong, D. H. Kang, H. -Y. Lee, and K. -H. Jung (2009) Aeration alleviates ethanol inhibition and glycerol production during fed-batch ethanol fermentation. Biotechnol. Bioprocess Eng. 14: 599–605.CrossRefGoogle Scholar
  20. 20.
    Chaplin, M. F. and J. F. Kennedy (1986) Carbohydrate analysis. A practical approach. p.3. IRL Press, Oxford, UK.Google Scholar
  21. 21.
    Bideaux, C., S. Alfenore, X. Cameleyre, C. Molina-Jouve, J. -L. Uribelarrea, and S. E. Guillouet (2006) Minimization of glycerol production during the high-performance fed-batch ethanolic fermentation process in Saccharomyces cerevisiae, using a metabolic model as a prediction tool. Appl. Environ. Microbiol. 72: 2134–2140.CrossRefGoogle Scholar

Copyright information

© The Korean Society for Biotechnology and Bioengineering and Springer-Verlag Berlin Heidelberg 2010

Authors and Affiliations

  • Hyeon-Beom Seo
    • 1
  • Ji-Hyeon Yeon
    • 1
  • Myung Hoon Chung
    • 2
  • Do Hyung Kang
    • 4
  • Hyeon-Yong Lee
    • 2
    • 3
  • Kyung-Hwan Jung
    • 1
  1. 1.Department of BiotechnologyChungju National UniversityChungbukKorea
  2. 2.Division of Biomaterials EngineeringKangwon National UniversityChuncheonKorea
  3. 3.Research Institute of Bioscience and BiotechnologyKangwon National UniversityChuncheonKorea
  4. 4.Korea Ocean Research & Development InstituteGyeonggi-doKorea

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