Use of electrodialysis technique for the separation of lactobionic acid produced by Zymomonas mobilis

Desalination 246 (2009) 253-257

Authors

Abstract

The separation of lactobionic acid (LBA), a product of a biotechnological process catalyzed by the enzymes glucose-fructose oxidoreductase and glucono-δ-lactonase of the bacteria Zymomonas mobilis, was studied using ion selective membranes in electrodialysis (ED). The recovery of LBA, present in a solution with a concentration of 20 g L–1, was 38.7% in 250 min of testing for an electrical potential difference of 15 V. When compared with a solution containing all the components present in the bioconversion (lactose, fructose,and sorbitol), the recovery was inhibited by the presence of non-ionic substances and the LBA recovery efficiency decreased to 16.2%. The same behavior was observed when a Z. mobilis bioconversion medium was used, with a recovery of 14%. Despite the low recovery efficiency the high specificity in relation to the other bioconversion components makes this process suited for LBA production.

Conclusion

The more effective EPD value tested was 15 V, resulting in a greater lactobionic acid recovery, a higher maximum velocity of conductivity reduction, and a lower electrical resistance. The separation of the lactobionic acid (LBA) from the other components present in the bioconversion medium showed a high specificity, although the recovery was affected by the presence of n-ionic components. Greater recovery efficiencies could be obtained by increasing the membrane area or the number of compartments in the electrodialysis [1] M.J. Hardman and R.K. Scopes, Eur. J. Biochem., 173 (1988) 203. [2] M. Satory, M. Fuerlinger, D. Haltrich, K.D. Kulbe, F. Pittner and B. Nidetzky, Biotechnol. Lett., 19 (1997) 1205. [3] M. Zachariou and R.K. Scopes, , J. Bacteriol., 3 (1986) 863. [4] R. Sumimoto and N. Kamada, Transplant. Proc., (1990) 2198. [5] P.E. Grimes, B.A. Green, R.H. Wildnauer and B.L. Edison, Cutis, 73 (2004) 3. [6] H.C. Ferraz, C.P. Borges and T. . Alvez, J. Membrane Sci., 191 (2001) 43. [7] S. Novalic, T. Kongbangkerd and K.D. Kulbe , J. of Membrane Sci., 114 (2000) 99. [8] T.V. Elisseeva, V.A. Shaposhnik and I.G. Luschik, Desalination, 149 (2002) 405. [9] P. Pinacci and M. Radaelli, Desalination, 148 (2002) 177. [10] L. Madzingaidzo, H. Danner and R. Braun, J. Biotechnol., 96 (2002) 223. [11] B. Rehr, C. Wilhelm and H. Sahm, Appl. Microbiol. Biotechnol., 35 (1991) 144. [12] U.H. Chun and P.L. Rogers, Appl. Microbiol. Biotechnol., 29 (1988) 19. [13] S. Carra, K. Concatto, F.C. Pasquali, E. Malvessi and M.M. Silveira, Bioconversão de Carboidratos em Sorbitol e Ácidos Orgânicos por Enzimas Periplasmáticas de Zymomonas mobilis, XV National Symposium of Bioprocess, cd-rom, Recife, Brazil, 2005. [14] F.A. Peretti, V. Santarosa, M. Zeni, V. Caldart and J. Zoppas, Desalination, 149 (2002) 389. [15] H.C. Ferraz, MSc. Thesis, Universidade Federal do Rio de Janeiro. Rio de Janeiro, Brazil, 1999.

Tags

Bioconversion, Electrodialysis, Ion selective membranes, Lactobionic acid, Zymomonas mobilis


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