Kinetic Modeling of Fructooligosaccharide Production Using Aspergillus oryzae N74

被引:20
作者
Guio, Felipe [2 ]
Rugeles, Luz D. [1 ]
Rojas, Sonia E. [1 ]
Palomino, Maria P. [1 ]
Camargo, Maria C. [1 ]
Sanchez, Oscar F. [1 ]
机构
[1] Univ Los Andes, Dept Chem Engn, Bogota, Colombia
[2] Univ Nacl Colombia, Dept Chem & Environm Engn, Bogota, Colombia
关键词
Fructosyltransferase; Fructooligosaccharides; Aspergillus oryzae; Immobilized glucose isomerase; IMMOBILIZED GLUCOSE-ISOMERASE; AGITATED AIRLIFT REACTOR; BETA-FRUCTOFURANOSIDASE; AUREOBASIDIUM-PULLULANS; ENZYMATIC PRODUCTION; MATHEMATICAL-MODEL; OLIGOSACCHARIDES; ISOMERIZATION; FRUCTOSE; SUCROSE;
D O I
10.1007/s12010-012-9629-4
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
In this study, the kinetic for the bioconversion of sucrose to fructooligosaccharides (FOS) by free cells of N74 was modeled. In addition, the effect of immobilized glucose isomerase (IGI) on FOS production yield was evaluated and considered in the kinetic model. The selected kinetic models were based on a proposed reaction mechanism described by elementary rate equations and modified Michaelis-Menten kinetic equations. The use of IGI allowed to increase the FOS production yield (FOSYield) and to decrease the glucose/fructose (G/F) ratio. At shake flask scale, the FOSYield was increased in 4.7 % (final yield 58.3 %), while the G/F ratio was reduced 6.2-fold. At bench scale, the FOSYield was increased in 2.2 % (final yield 57.3 %), while the G/F ratio was reduced 4.5-fold. The elementary rate equation model was the one that best adjusted experimental data for FOS production using either the fungus biomass or the mixture fungus biomass-IGI, with an overall average percentage error of 7.2. Despite that FOS production yield was not highly improved by the presence of IGI in the reaction mixture, it favored the reduction of residual glucose in the mixture, avoiding the loss of material owe to glucose transformation to fructose that can be used in situ for FOS production by the fructosyltransferase.
引用
收藏
页码:142 / 163
页数:22
相关论文
共 35 条
[1]   Computational analysis of the fructosyltransferase enzymes in plants, fungi and bacteria [J].
Almeciga-Diaz, Carlos J. ;
Gutierrez, Angela M. ;
Bahamon, Isabella ;
Rodriguez, Alexander ;
Rodriguez, Mauro A. ;
Sanchez, Oscar F. .
GENE, 2011, 484 (1-2) :26-34
[2]   Molecular and industrial aspects of glucose isomerase [J].
Bhosale, SH ;
Rao, MB ;
Deshpande, VV .
MICROBIOLOGICAL REVIEWS, 1996, 60 (02) :280-+
[3]   Prebiotic effectiveness of fructans of different degrees of polymerization [J].
Biedrzycka, E ;
Bielecka, M .
TRENDS IN FOOD SCIENCE & TECHNOLOGY, 2004, 15 (3-4) :170-175
[4]   Selection of probiotics and prebiotics for synbiotics and confirmation of their in vivo effectiveness [J].
Bielecka, M ;
Biedrzycka, E ;
Majkowska, A .
FOOD RESEARCH INTERNATIONAL, 2002, 35 (2-3) :125-131
[5]   Semibatch and continuous fructooligosaccharides production by Aspergillus sp N74 in a mechanically agitated airlift reactor [J].
Caicedo, Luis ;
Silva, Edelberto ;
Sanchez, Oscar .
JOURNAL OF CHEMICAL TECHNOLOGY AND BIOTECHNOLOGY, 2009, 84 (05) :650-656
[6]   Kinetics of glucose isomerization to fructose by immobilized glucose isomerase in the presence of substrate protection [J].
Converti A. ;
Del Borghi M. .
Bioprocess Engineering, 1997, 18 (1) :27-33
[7]   Production, properties and applications of food-grade oligosaccharides [J].
Crittenden, RG ;
Playne, MJ .
TRENDS IN FOOD SCIENCE & TECHNOLOGY, 1996, 7 (11) :353-361
[8]   Kinetics of Glucose Isomerization to Fructose by Immobilized Glucose Isomerase (Sweetzyme IT) [J].
Dehkordi, Asghar Molaei ;
Tehrany, Mehrdad Shoai ;
Safari, Iman .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2009, 48 (07) :3271-3278
[9]   Semi-interpenetrating polymer networks (IPNs) for entrapment of glucose isomerase [J].
Demirel, G ;
Özçetin, G ;
Sahin, F ;
Tümtürk, H ;
Aksoy, S ;
Hasirci, N .
REACTIVE & FUNCTIONAL POLYMERS, 2006, 66 (04) :389-394
[10]  
Dixon M., 1979, ENZYMES