Exploiting the pressure effect on lipase-catalyzed wax ester synthesis in dense carbon dioxide

Knez, Z; Laudani, CG; Habulin, M; Reverchon, E

HERO ID

4940629

Reference Type

Journal Article

Year

2007

Language

English

PMID

17221889

HERO ID 4940629
In Press No
Year 2007
Title Exploiting the pressure effect on lipase-catalyzed wax ester synthesis in dense carbon dioxide
Authors Knez, Z; Laudani, CG; Habulin, M; Reverchon, E
Journal Biotechnology and Bioengineering
Volume 97
Issue 6
Page Numbers 1366-1375
Abstract The present work focuses on the thermodynamic interpretation of the lauryl oleate biosynthesis in high-pressure carbon dioxide. Lipase-catalyzed lauryl oleate production by oleic acid esterification with 1-dodecanol over immobilized lipase from Rhizomucor miehei (Lipozyme RM IM) was successfully performed in a sapphire window batch stirred tank reactor (BSTR) using dense CO(2) as reaction medium. The experiments were planned to elucidate the pressure effect on the reaction performance. With increasing the pressure up to 10 MPa, the catalytic efficiency of the studied enzyme improved rising up to a maximum and decreased at higher pressure values. Kinetic observations, exhibiting that dense CO(2) expanded reaction mixture in subcritical conditions led to higher performance than when diluted in a single supercritical phase, were elucidated by phase-equilibrium arguments. The experimental results were justified with emphasis on thermodynamic interpretation of the studied system. Particularly, the different reaction performances obtained were related to the position of the operating point with respect to the location of liquid-vapor phase boundaries of the reactant fatty acid/alcohol/CO(2) ternary system. The outlook for exploitation of CO(2) expanded phase at lower pressure compared to supercritical phase, with heterogeneous system in which the solid catalyst particles are exposed to dense CO(2) expanded reaction mixture, in developing new biotransformation schemes is promising.
Doi 10.1002/bit.21331
Pmid 17221889
Is Certified Translation No
Dupe Override 4940629
Is Public Yes
Language Text English
Keyword Rhizomucor miehei; Carbon dioxide; Pressure; Thermodynamics; Fatty acids; Esters; biotransformation; alcohols; Kinetics; Enzymes; Triacylglycerol lipase; Catalysts; Oleic acid; Esterification
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