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Received December 20, 2007
Accepted May 1, 2008
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Kinetic investigation on asymmetric bioreduction of ethyl 4-chloro acetoacetate catalyzed by baker’s yeast in an organic solvent-water biphasic system

1Department of Chemical Engineering, I-Shou University, Kaohsiung County, Taiwan 2Department of Medical Nutrition, I-Shou University, Kaohsiung County, Taiwan
Korean Journal of Chemical Engineering, November 2008, 25(6), 1427-1433(7), 10.1007/s11814-008-0234-8
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Abstract

This study investigated the kinetic characteristics of asymmetric bioreduction of ethyl 4-chloro acetoacetate (ECA) to produce (S)-4-chloro-3-hydroxybutyric acid ethyl ester (S-CHBE) by baker’s yeast in a water-organic solvent biphasic system. Exactly how several organic solvents affect reaction performance was studied first. Among the solvents tested, petroleum ether exhibited the optimum reaction efficiency. Compared with the aqueous system, reaction yield was enhanced from 74.5% to 84.0%, and the product’s ee increased from 82.3% to 88.0% after 10%_x000D_ petroleum ether was added. The kinetic behavior of asymmetric bioreduction of ECA in the petroleum ether-water biphasic system was then examined by using a mathematical model. Kinetic analysis reveals that the maximal reaction rate and affinity between the substrate and the biocatalyst were both lower in the biphasic system than in the aqueous system. Additionally, the substrate inhibition effect was greater in this biphasic system than in the aqueous system._x000D_ However, the ratio of the formation rate for producing S-CHBE to that for producing R-CHBE in the biphasic system was significantly higher than that in the aqueous system. Moreover, adding petroleum ether reduced spontaneous ECA degradation markedly. These two kinetic characteristics explain why the biphasic system exhibited a higher yield and a better product’s ee (enantiomeric excess) than the aqueous system.

References

Ou Z, Wu J, Yang L, Cen P, Korean J. Chem. Eng., 25(1), 124 (2008)
Li GY, Huang KL, Jiang YR, Ding P, Process Biochem., 42, 1465 (2007)
Matsuda M, Yamazaki T, Fuhshuku KI, Sugai T, Tetrahedron, 63, 8752 (2007)
Houng JY, Liau JS, Biotechnol. Lett., 25(1), 17 (2003)
Buque-Taboada EM, Straathof AJJ, Heijnen JJ, van der Wielen LAM, Enzyme Microb. Technol., 37(6), 625 (2005)
Li YN, Shi XA, Zong MH, Meng C, Dong YQ, Guo YH, Enzyme Microb. Technol., 40(5), 1305 (2007)
Patel RN, McNamee CG, Banerjee A, Howell JM, Robison RS, Szarka LJ, Enzyme Microb. Technol., 14, 731 (1992)
Kita K, Kataoka M, Shimizu S, J. Biosci. Bioeng., 88(6), 591 (1999)
Shimizu S, Kataoka M, Katoh M, Morikawa T, Miyoshi T, Yamada H, Appl. Environ. Microbiol., 56, 2374 (1990)
Chin-Joe I, Nelisse PM, Straathof AJJ, Jongejan JA, Pronk JT, Heijnen JJ, Biotechnol. Bioeng., 69(4), 370 (2000)
Nakamura K, Kondo S, Kawai Y, Ohno A, Bull. Chem. Soc. Jpn., 66, 2738 (1993)
Rotthaus O, Kruger D, Demuth M, Schaffner K, Tetrahedron, 53, 935 (1997)
Cui JN, Ema T, Sakai T, Utaka M, Tetrahedron: Asym., 9, 2681 (1998)
Molinari F, Occhiato EG, Aragozzini F, Guarna A, Tetrahedron: Asym., 9, 1389 (1998)
Houng JY, Liau JS, Enzyme Microb. Technol., 38(7), 879 (2006)
Houng JY, Hsu FH, Liu YH, Wu JY, J. Biotechnol., 100, 239 (2003)
Laane C, Boeren S, Vos K, Veeger C, Biotechnol. Bioeng., 30, 81 (1987)
Jayasinghe LY, Smallridge AJ, Trewhella MA, Tetrahedron Lett., 34, 3949 (1993)
Medson C, Smallridge AJ, Trewhella MA, Tetrahedron: Asym., 8, 1049 (1997)
Dumanski PG, Florey P, Knettig M, Smallridge AJ, Trewhella MA, J. Mol. Cataly. - B Enzym., 11, 905 (2001)
Evans CT, Hanna K, Payne C, Conrad DW, Misawa M, Enzyme Microb. Technol., 9, 417 (1987)
Lortie R, Andre G, Enzyme Microb. Technol., 13, 960 (1991)
Wang JS, Araki T, Ogawa T, Matsuoka M, Fukuda H, Biotechnol. Bioeng., 62(4), 402 (1999)
Leon R, Fernandes P, Pinheiro HM, Cabral JMS, Enzyme Microb. Technol., 23, 483 (2002)

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