Related Experiment Video
Updated: Mar 9, 2026

Unraveling Entropic Rate Acceleration Induced by Solvent Dynamics in Membrane Enzymes
Published on: January 16, 2016
Is the catalytic activity of triosephosphate isomerase fully optimized? An investigation based on maximization of
Željana Bonačić Lošić1, Tomislav Donđivić2, Davor Juretić3
1Faculty of Science, University of Split, Ruđera Boškovića 33, 21000, Split, Croatia.
Abstract:
Triosephosphate isomerase (TIM) is often described as a fully evolved housekeeping enzyme with near-maximal possible reaction rate. The assumption that an enzyme is perfectly evolved has not been easy to confirm or refute. In this paper, we use maximization of entropy production within known constraints to examine this assumption by calculating steady-state cyclic flux, corresponding entropy production, and catalytic activity in a reversible four-state scheme of TIM functional states. The maximal entropy production (MaxEP) requirement for any of the first three transitions between TIM functional states leads to decreased total entropy production. Only the MaxEP requirement for the product (R-glyceraldehyde-3-phosphate) release step led to a 30% increase in enzyme activity, specificity constant kcat/KM, and overall entropy production. The product release step, due to the TIM molecular machine working in the physiological direction of glycolysis, has not been identified before as the rate-limiting step by using irreversible thermodynamics. Together with structural studies, our results open the possibility for finding amino acid substitutions leading to an increased frequency of loop six opening and product release.
Related Concept Videos
Catalytically Perfect Enzymes
Most enzymes...
ATP Energy Storage and Release
One example of energy coupling using ATP involves a...
Glycolysis: Preparatory Phase
Energy-requiring Steps of Glycolysis
Glycolysis: Pay-off Phase
Step 1 - 5: Glycolysis Preparatory Phase
The first phase of glycolysis has 5 steps where the glucose is...
Other Glycolytic Pathways

