A Fractal-Like Kinetic Equation to Investigate Temperature Effect on Cellulose Hydrolysis by Free and Immobilized Cellulase

被引:0
作者
Yu Zhang
Jing-Liang Xu
Wei Qi
Zhen-Hong Yuan
Xin-Shu Zhuang
Yun Liu
Min-Chao He
机构
[1] Chinese Academy of Sciences,Key Laboratory of Renewable Energy and Gas Hydrate, Guangzhou Institute of Energy Conversion
来源
Applied Biochemistry and Biotechnology | 2012年 / 168卷
关键词
Biomass; Cellulase; Fractal-like kinetics; Rate constant; Arrhenius equation; Simulation and prediction;
D O I
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中图分类号
学科分类号
摘要
According to fractal-like theory in the heterogeneous system, a cellulase-catalyzed kinetic equation that contained two parameters (rate constant k and fractal dimension h) was deduced. The equation described directly the mathematical relationship between reducing sugar concentration and hydrolytic time, and accurately fitted the experimental data of free/immobilized cellulase at 37, 40, 44, 47, and 50 °C (R2 > 0.99). The fitted h value is estimated as a constant (0.6148) in these tested temperatures. The fitted k value increased with temperature increase, and the relationship agreed with Arrhenius equation (R2 > 0.98). The fractal-like equation could predict accurately the experimental data at low temperature 34 °C for free/immobilized cellulase and high temperature 53 °C for immobilized cellulase, but the prediction at 53 °C for free cellulase was not accurate enough due to its lower stability than immobilized cellulase. The application of fractal-like theory in cellulase kinetics is successful.
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页码:144 / 153
页数:9
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  • [1] Gray KA(2007)undefined International Sugar Journal 109 145-151
  • [2] Jørgensen H(2007)undefined Biofuels, Bioproducts and Biorefining 1 119-134
  • [3] Kristensen JB(2010)undefined Biochemical Engineering Journal 48 218-224
  • [4] Felby C(2008)undefined Applied Biochemistry and Biotechnology 151 122-131
  • [5] Han YJ(2010)undefined Applied Biochemistry and Biotechnology 160 604-612
  • [6] Chen HZ(2007)undefined Applied Engineering in Agriculture 23 679-687
  • [7] Sukumaran RK(2006)undefined Biotechnology Advances 24 452-481
  • [8] Mekala NK(2008)undefined Biochemical Engineering Journal 41 241-250
  • [9] Singhania RR(2009)undefined Biotechnology Advances 27 833-848
  • [10] Pandey A(2005)undefined Process Biochemistry 40 3360-3364