AbstractThe constraint-based analysis has emerged as a useful tool for analysis of biochemical networks. This work introduces the concept of kinetic constraints. It is shown that maximal reaction rates are appropriate constraints only for isolated enzymatic reactions. For biochemical networks, it is revealed that constraints for formation of a steady state require specific relationships between maximal reaction rates of all enzymes. The constraints for a branched network are significantly different from those for a cyclic network. Moreover, the constraints do not require Michaelis-Menten constants for most enzymes, and they only require the constants for the enzymes at the branching or cyclic point. Reversibility of reactions at system boun...
Biochemical networks consist of highly interconnected dynamic systems of chemical reaction represent...
Metabolic networks are often extremely complex. Despite intensive efforts many details of these netw...
ObjectiveThe complexity of biochemical networks is enormous and difficult to unravel by intuitive re...
The constraint-based analysis has emerged as a useful tool for analysis of biochemical networks. Thi...
AbstractThe constraint-based analysis has emerged as a useful tool for analysis of biochemical netwo...
Mathematical models of biological networks play an important role in metabolic engineering through t...
Two divergent modelling methodologies have been adopted to increase our understanding of metabolism ...
This paper further develops the connection between Chemical Reaction Network Theory (CRNT) and Bioch...
A precise quantification of the effect of perturbations in a metabolic network depends on explicit k...
Modeling cellular metabolism has become a fundamental part of biotechnological research. Metabolic m...
International audienceTo understand the phenotypic capabilities of organisms, it is useful to charac...
Motivation The understanding of metabolic interactions has grown rapidly in recent years with metab...
Analysis of the dynamic and steady-state properties of biochemical networks hinges on information ab...
Regulation of metabolic enzymes plays a crucial role in the maintenance of metabolic homeostasis, an...
Abstract The deficiency of a (bio)chemical reaction network can be conceptually interpreted as a mea...
Biochemical networks consist of highly interconnected dynamic systems of chemical reaction represent...
Metabolic networks are often extremely complex. Despite intensive efforts many details of these netw...
ObjectiveThe complexity of biochemical networks is enormous and difficult to unravel by intuitive re...
The constraint-based analysis has emerged as a useful tool for analysis of biochemical networks. Thi...
AbstractThe constraint-based analysis has emerged as a useful tool for analysis of biochemical netwo...
Mathematical models of biological networks play an important role in metabolic engineering through t...
Two divergent modelling methodologies have been adopted to increase our understanding of metabolism ...
This paper further develops the connection between Chemical Reaction Network Theory (CRNT) and Bioch...
A precise quantification of the effect of perturbations in a metabolic network depends on explicit k...
Modeling cellular metabolism has become a fundamental part of biotechnological research. Metabolic m...
International audienceTo understand the phenotypic capabilities of organisms, it is useful to charac...
Motivation The understanding of metabolic interactions has grown rapidly in recent years with metab...
Analysis of the dynamic and steady-state properties of biochemical networks hinges on information ab...
Regulation of metabolic enzymes plays a crucial role in the maintenance of metabolic homeostasis, an...
Abstract The deficiency of a (bio)chemical reaction network can be conceptually interpreted as a mea...
Biochemical networks consist of highly interconnected dynamic systems of chemical reaction represent...
Metabolic networks are often extremely complex. Despite intensive efforts many details of these netw...
ObjectiveThe complexity of biochemical networks is enormous and difficult to unravel by intuitive re...