Modeling cellobiose hydrolysis with integrated kinetic models

被引:17
作者
Luiza P. V. Calsavara
Flávio F. De Moraes
Gisella M. Zanin
机构
[1] State University of Maringá,Chemical Engineering Department
关键词
Cellobiase; cellobiose; kinetic modeling; thermal stability; energy of deactivation; energy of activation;
D O I
10.1385/ABAB:79:1-3:789
中图分类号
学科分类号
摘要
The enzyme cellobiase Novozym 188, which is used for improving hydrolysis of bagasse with cellulase, was characterized in its commercial available form and integrated kinetic models were applied to the hydrolysis of cellobiose. The specific activity of this enzyme was determined for pH values from 3.0–7.0, and temperatures from 40–75°C, with cellobiose at 2 g/L. Thermal stability was measured at pH 4.8 and temperatures from 40–70°C. Substrate inhibition was studied at the same pH, 50°C, and cellobiose concentrations from 0.4–20 g/L. Product inhibition was determined at 50°C, pH 4.8, cellobiose concentrations of 2 and 20 g/L, and initial glucose concentration nearly zero or 1.8 g/L. The enzyme has shown the greatest specific activity, 17.8 U/mg, at pH 4.5 and 65°C. Thermal activation of the enzyme followed Arrhenius equation with the Energy of Activation being equal to 11 kcal/mol for pH values 4 and 5. Thermal deactivation was adequately modeled by the exponential decay model with Energy of Deactivation giving 81.6 kcal/mol. Kinetics parameters for substrate uncompetitive inhibition were: Km=2.42 mM, Vmax=16.31 U/mg, Ks=54.2 mM. Substrate inhibition was clearly observed above 10 mM cellobiose. Product inhibition at the concentration studied has usually doubled the time necessary to reach the same conversion at the lower temperature tested.
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页码:789 / 806
页数:17
相关论文
共 47 条
[1]  
Cantarella M.(1984)undefined Ann. NY Acad. Sci. 434 39-43
[2]  
Gallifuoco A.(1991)undefined Biores. Technol. 36 67-75
[3]  
Scardi V.(1995)undefined Biotechnol. Prog. 11 104-106
[4]  
Alfani F.(1984)undefined Can. J. Biochem. Cell. Biol. 63 167-175
[5]  
Woodward J.(1977)undefined Biotechnol. Bioeng. 19 959-981
[6]  
Aguado J.(1992)undefined Appl. Biochem. Biotechnol. 34/35 341-347
[7]  
Romero M. D.(1969)undefined Ann. Clin. Biochem. 6 24-27
[8]  
Rodríguez L.(1951)undefined J. Biol. Chem. 193 265-275
[9]  
Calles J. A.(1993)undefined ACS Symposium Series 533 240-250
[10]  
Hsuanyu Y.(1986)undefined Biotechnol. Bioeng. 28 1438-1442