In this work, a novel method is proposed to establish the most suitable operational temperature for an enzyme reactor. The method was based on mathematical modelling of the thermal stability and activity of the enzyme and was developed using thermodynamic concepts and experimental data from free and immobilized inulinases (2,1-beta-D fructan frutanohydrolase, EC 3.2.1.7) from Kluyveromyces marxiantis, which were used as examples. The model was, therefore, designed to predict the enzyme activity with respect to the temperature and time course of the enzymatic process, as well as its half-life, in a broad temperature range. The knowledge and information provided by the model could be used to design the operational temperature conditions, lead...
The two established thermal properties of enzymes are their activation energy and their thermal stab...
The aim of this work is to evaluate the effects of the butyl acetate concentration on the characteri...
A 23.5-fold purified exoinulinase with a specific activity of 413 IU/mg and covalently immobilized o...
A mathematical model was used in this study to describe the effect of temperature on the activity an...
The way that enzymes respond to temperature is fundamental to many areas of biotechnology. This has ...
Of the two independent processes by which enzymes lose activity with increasing temperature, irrever...
The two established thermal properties of enzymes are their activation energy and their thermal stab...
Traditionally, the dependence of enzyme activity on temperature has been described by a model consis...
Two established thermal properties of enzymes are the Arrhenius activation energy and thermal stabil...
Arising from careful measurements of the thermal behaviour of enzymes, a new model, the Equilibrium ...
Enzymes have been extensively used in organic solvents to catalyze a variety of reactions of biologi...
The thermal stability and the energy of deactivation of free invertase and the immobilized enzyme (I...
The Classical Model describing the effects of temperature on enzyme activity consists of two process...
Careful analysis of the dependence of enzyme activity on assay temperature has revealed that some en...
The two established thermal properties of enzymes are their activation energy and their thermal stab...
The aim of this work is to evaluate the effects of the butyl acetate concentration on the characteri...
A 23.5-fold purified exoinulinase with a specific activity of 413 IU/mg and covalently immobilized o...
A mathematical model was used in this study to describe the effect of temperature on the activity an...
The way that enzymes respond to temperature is fundamental to many areas of biotechnology. This has ...
Of the two independent processes by which enzymes lose activity with increasing temperature, irrever...
The two established thermal properties of enzymes are their activation energy and their thermal stab...
Traditionally, the dependence of enzyme activity on temperature has been described by a model consis...
Two established thermal properties of enzymes are the Arrhenius activation energy and thermal stabil...
Arising from careful measurements of the thermal behaviour of enzymes, a new model, the Equilibrium ...
Enzymes have been extensively used in organic solvents to catalyze a variety of reactions of biologi...
The thermal stability and the energy of deactivation of free invertase and the immobilized enzyme (I...
The Classical Model describing the effects of temperature on enzyme activity consists of two process...
Careful analysis of the dependence of enzyme activity on assay temperature has revealed that some en...
The two established thermal properties of enzymes are their activation energy and their thermal stab...
The aim of this work is to evaluate the effects of the butyl acetate concentration on the characteri...
A 23.5-fold purified exoinulinase with a specific activity of 413 IU/mg and covalently immobilized o...