Experimental data show that the effect of temperature on enzymes cannot be adequately explained in terms of a two-state model based on increases in activity and denaturation. The Equilibrium Model provides a quantitative explanation of enzyme thermal behaviour under reaction conditions by introducing an inactive (but not denatured) intermediate in rapid equilibrium with the active form. The temperature midpoint (Teq) of the rapid equilibration between the two forms is related to the growth temperature of the organism, and the enthalpy of the equilibrium (ΔHeq) to its ability to function over various temperature ranges. In the present study, we show that the difference between the active and inactive forms is at the enzyme active site. The r...
The "Equilibrium Model" has provided new tools for describing and investigating enzyme thermal adapt...
The increase in enzymatic rates with temperature up to an optimum temperature (Topt) is widely attri...
We review the adaptations of enzyme activity to different temperatures. Psychrophilic (cold-adapted)...
Experimental data show that the effect of temperature on enzymes cannot be adequately explained in t...
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...
AbstractThe discovery of an additional step in the progression of an enzyme from the active to inact...
Arising from careful measurements of the thermal behaviour of enzymes, a new model, the Equilibrium ...
The discovery of an additional step in the progression of an enzyme from the active to inactive stat...
The Classical Model describing the effects of temperature on enzyme activity consists of two process...
A new, experimentally-validated “Equilibrium Model” describes the effect of temperature on enzymes, ...
The two established thermal properties of enzymes are their activation energy and their thermal stab...
The "Equilibrium Model" has provided new tools for describing and investigating enzyme thermal adapt...
The increase in enzymatic rates with temperature up to an optimum temperature (Topt) is widely attri...
We review the adaptations of enzyme activity to different temperatures. Psychrophilic (cold-adapted)...
Experimental data show that the effect of temperature on enzymes cannot be adequately explained in t...
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...
AbstractThe discovery of an additional step in the progression of an enzyme from the active to inact...
Arising from careful measurements of the thermal behaviour of enzymes, a new model, the Equilibrium ...
The discovery of an additional step in the progression of an enzyme from the active to inactive stat...
The Classical Model describing the effects of temperature on enzyme activity consists of two process...
A new, experimentally-validated “Equilibrium Model” describes the effect of temperature on enzymes, ...
The two established thermal properties of enzymes are their activation energy and their thermal stab...
The "Equilibrium Model" has provided new tools for describing and investigating enzyme thermal adapt...
The increase in enzymatic rates with temperature up to an optimum temperature (Topt) is widely attri...
We review the adaptations of enzyme activity to different temperatures. Psychrophilic (cold-adapted)...