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首页> 外文期刊>Karbala International Journal of Modern Science >Homotopy perturbation method for kinetic analysis of thermal inactivation of jack bean urease
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Homotopy perturbation method for kinetic analysis of thermal inactivation of jack bean urease

机译:jack豆脲酶热失活动力学的同态摄动法

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In this work, theoretical modeling and determination of molar concentration of the native and denatured jack bean urease (EC 3.5.1.5) are presented. A three-reaction kinetic model of thermal inactivation of urease is analyzed using homotopy perturbation method. The obtained analytical solutions are used to study the kinetics of thermal inactivation of the enzyme as applied in biotechnology. From the results, it is established that the molar concentration of native enzyme decreases as the time increases while the molar concentration of the denatured enzyme increases as the time increases. The time taken to reach the maximum value of the molar concentration of native enzyme is the same as the time taken to reach the minimum value of the molar concentration of the denature enzyme. The molar concentration of the denatured enzyme reaches the steady state value when reaction time is less than or equal to 5s. Also, the molar concentration of the denatured enzyme becomes zero when rate constant of dissociation reaction of the native form of the enzyme into a denatured form, is less than or equal to 0.01?s?1. The analytical solutions are verified with numerical solutions using Runge–Kutta with shooting method and good agreements are established between the solutions. The information given in this theoretical investigation will assist in the kinetic analysis of the experimental results over handling rate constants and molar concentrations.
机译:在这项工作中,提出了天然和变性的波克豆脲酶(EC 3.5.1.5)的摩尔浓度的理论模型和确定。利用同伦摄动法分析了脲酶热失活的三反应动力学模型。所获得的分析溶液用于研究生物技术中所用酶热灭活的动力学。从结果可以确定,天然酶的摩尔浓度随时间增加而降低,而变性酶的摩尔浓度随时间增加而增加。达到天然酶的摩尔浓度的最大值所需的时间与达到变性酶的摩尔浓度的最小值所需的时间相同。当反应时间小于或等于5s时,变性酶的摩尔浓度达到稳态值。而且,当酶的天然形式转化为变性形式的解离反应的速率常数小于或等于0.01≤s≤1时,变性酶的摩尔浓度变为零。使用带有射击方法的Runge-Kutta数值解验证了解析解,并且在解之间建立了良好的协议。该理论研究中提供的信息将有助于对处理速率常数和摩尔浓度进行实验结果的动力学分析。

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