Kinetic Modeling of Simultaneous Saccharification and Fermentation for Ethanol Production Using Steam-Exploded Wood with Glucose- and Cellobiose-Fermenting Yease, Brettanomyces custersii

  • Moon, Hyun-Soo (Graduate School of Biotechnology, Korea University) ;
  • Kim, Jun-Seok (Department of Chemical Engineering, Korea University) ;
  • Oh, Kyeong-Keun (Department of Industrial Chemistry, Dankook University) ;
  • Kim, Seung-Wook (Department of Chemical Engineering, Korea University) ;
  • Hong, Suk-In (Department of Chemical Engineering, Korea University)
  • Published : 2001.08.01

Abstract

A mathematical model is proposed that can depict the kinetics of simultaneous saccharification and fermentation (SSF) using steam-exploded wood(SEW) with a glucose- and cellobiose-fermenting yeast strain. Brettanomyces custersii. An expression to describe the reduction of the relative digestibility during the hydrolysis of the SEW is introduced in the hydrolysis model. The fermentation model also takes two new factors into account, that is, the effects of the inhibitory compounds present in the SEW hydrolysates on the microorganism and the fermenting ability of Brettanomyces custersii, which can use both glucose and cellobiose as carbon sources. The model equations were used to simulate the hydrolysis of the SEW, the fermentation of the SEW hydrolysates, and a batch SSF, and the results were compared with the experimental data. The model was found to be capable of representing ethanol production over a range of substrate concentrations. Accordingly, the limiting factors in ethanol production by SSF under the high concentration of the SEW were identified as the effect of inhibitory compounds present in the SEW, the enzyme deactivation, and a limitation in the digestibility based on the physical condition of the substrate.

Keywords

References

  1. J. Microbiol. Biotechnol. v.9 Novel SSF process for ethanol process from microcrystalline cellulose using the δ-integrated recombinant yeast, Saccharomyces cerevisiae L2612δGC. Cho, K. M.;Y. J. Yoo
  2. J. Chem. Tech. Biotechnol. v.34B Fermentation inhibitors in wood hydrolysates derived from the softwood Pinus radiata Clark, T.A.;K.L. Mackie
  3. Biotechnol. Bioeng/ v.38 Saccharification of steam-exploded popular wood Excoffier, G.B.;B. Toussaint;M. R. Vignon
  4. Documentation for MINPACK subroutine LMDIF1 Double precision version Garbow, B. S.;K. E. Hillstrom;J. J. More
  5. Pure & Appl. Chem. v.59 Measurment of cellulase activities Ghose, T.K.
  6. J. Microbiol. Biotechnol. v.9 Ethanol production from lignocellulosic biomass by simultaneous saccharification and fermentation employing the reuse of yeast and enzyme Kim, J.S.;K.K. Oh;Y.S. Jeong;S.W. Kim;S.I. Hong
  7. Korea. J. Biotechnol. Bioeng v.14 Fed-batch simultaneous saccharification and fermentation of waste paper to ethanol kwon, J.K.;H. Moon;J.S. Kim;S.W. Kim;S.I. Hong
  8. Biochemical Engineering Lee, J. M.
  9. J. Kor. Inst. Eng. v.32 Optimization of pretreatment conditions for enzymatic hydrolysis of lignocellulosic biomass Lee, J.S.;J.P. Lee;J.K. Cho;Y.W. Lee;J.J. Hong;S.C. Park
  10. Biotechnol. Bioeng. v.25 Kinetic studies of enzymatic hydrolysis of insoluble cellulose:(Ⅱ). Analysis of extended hydrolysis times Lee, Y. H.;L.T. Fan
  11. Biotechnol. Bioeng. v.22 The Monod equation:a revisit and a generalization to product inhibition situation Levenspiel, O.
  12. Biotechnol. Lett. v.8 Conversion into acetone and butanol of lignocellulosic substrates pretreated by steam explosion Marchal, R.;M. Ropas;J.P. Vandecasteele
  13. Korean J. Biotechnol. Bioeng. v.11 kinetic modeling of the enzymatic hydrolysos of α-cellulose at high sugar concentration Oh, K.K.;Y.S. Jeoung;S.I. Hong
  14. Appl. Biochem. Biotechnol. v.89 Bioconversion of cellulose into ethanol by nonisothermal simultaneous saccharification and fermentation Oh, K.K.;S.W. Kim;Y.S. Jeong;S. I. Hong
  15. Process Biochem v.28 Fermentative performance of bacteria and yeasts in lignocellulosic hydrolysates Olsson, L.;B.H. H$\"{a}$erdal
  16. Enzyme Microb. Technol. v.18 Fermentation of lignocellulosic hydrolysates for ethanol production Olsson, L.;B.H. H$\"{a}$erdal
  17. J. Microbiol. Biotechnol. v.8 Development of celullose-utilizing recombinant yeast for ethanol production from cellulose hydrolyzate Pack, S.P.;K.M. Cho;H.S. Kang;Y. J. Yoo
  18. Kor. J. Appl. Microbiol. Biotechnol. v.27 Development of strain fermenting the glucose/cellobiose mixed sugar for simultaneous saccharification and fermentation of cellulosic materials Park, S.W.;Y.K. Hong;S.W. Kim;S. I. Hong
  19. Appl. Biochem.Biotechnol. v.34/35 Mathematical modeling of cellulosic conversion to ethanol by the simultaneous saccharification and fermentation process Philippidis, G.P.;D.D. Spindler;C.E.Wyman
  20. Biotechnol.Bioeng v.41 Study of the enzymatic hydrolysis of cellulose for production of fuel ethanol by the simultaneous saccharification and fermentation process Philippidis, G.P.;T.K. Smith;C.E. Wyman
  21. Enzyme Microb. Technol. v.17 Modeling simultaneous saccharification and fermentation of lignocellulose to ethanol in batch and continuous reactors South, C. R.;D. A. L. Hogsett;L. R. Lynd
  22. Biotechnol. Lett v.14 Evaluation of the cellobiose-fermenting yeast Brettanomyces custersii in the simultaneous Spindler, D. D.;C. E. Wyman;K. Grohmann;G.P. Philippidis
  23. Biotechol. Lett. v.7 Red oak wood derived inhibitors in the ethanol fermentation of xylose by Pichia stipitis CBS5776 Tran, A. V.;R.P. Chambers