TY - JOUR
T1 - Modeling of pullulan fermentation by using a color variant strain of Aureobasidium pullulans
AU - Cheng, Kuan Chen
AU - Demirci, Ali
AU - Catchmark, Jeffrey M.
AU - Puri, Virendra M.
N1 - Funding Information:
This project is funded by Pennsylvania Agricultural Experiment Station . The authors thank the Statistical Consulting Center at Pennsylvania State University for providing guidance on statistical analysis.
PY - 2010/6
Y1 - 2010/6
N2 - Pullulan, which is comprised of glucose units, is a simple linear polysaccharide produced by Aureobasidium pullulans. Pullulan has long been used in various applications such as blood plasma substitutes, food additives, adhesive additives, flocculants, and even environmental pollution control agents. Mathematical models of biomass, pullulan, and sucrose profiles during fermentation not only provide information about the kinetic-metabolic nature of pullulan, but also facilitate the control and optimization of pullulan production. In this study, several models were modified and tested in order to describe biomass, pullulan, and sucrose profiles during batch fermentation using a color variant strain of A. pullulans. The results demonstrated that the modified Gompertz model can serve as a universal equation to fit biomass production, pullulan production, and sucrose consumption. Furthermore, validation of this modified Gompertz model indicated that biomass (slope = 1.00, R2 = 0.991), pullulan (slope = 1.10, R2 = 0.991), and sucrose (slope = 0.96, R2 = 0.991) were all predicted accurately.
AB - Pullulan, which is comprised of glucose units, is a simple linear polysaccharide produced by Aureobasidium pullulans. Pullulan has long been used in various applications such as blood plasma substitutes, food additives, adhesive additives, flocculants, and even environmental pollution control agents. Mathematical models of biomass, pullulan, and sucrose profiles during fermentation not only provide information about the kinetic-metabolic nature of pullulan, but also facilitate the control and optimization of pullulan production. In this study, several models were modified and tested in order to describe biomass, pullulan, and sucrose profiles during batch fermentation using a color variant strain of A. pullulans. The results demonstrated that the modified Gompertz model can serve as a universal equation to fit biomass production, pullulan production, and sucrose consumption. Furthermore, validation of this modified Gompertz model indicated that biomass (slope = 1.00, R2 = 0.991), pullulan (slope = 1.10, R2 = 0.991), and sucrose (slope = 0.96, R2 = 0.991) were all predicted accurately.
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U2 - 10.1016/j.jfoodeng.2010.01.011
DO - 10.1016/j.jfoodeng.2010.01.011
M3 - Article
AN - SCOPUS:76549109664
SN - 0260-8774
VL - 98
SP - 353
EP - 359
JO - Journal of Food Engineering
JF - Journal of Food Engineering
IS - 3
ER -