Genome-scale metabolic reconstructions are currently available for hundreds of organisms. Constraint-based modeling enables the analysis of the phenotypic landscape of these organisms, predicting the response to genetic and environmental perturbations. However, since constraint-based models can only describe the metabolic phenotype at the reaction level, understanding the mechanistic link between genotype and phenotype is still hampered by the complexity of gene-protein-reaction associations. We implement a model transformation that enables constraint-based methods to be applied at the gene level by explicitly accounting for the individual fluxes of enzymes (and subunits) encoded by each gene. We show how this can be applied to different ki...
The uncertain relationship between genotype and phenotype can make strain engineering an arduous tri...
Genome-scale models of metabolism can illuminate the molecular basis of cell phenotypes. Since some ...
Omic data analysis is steadily growing as a driver of basic and applied molecular biology research. ...
<div><p>Genome-scale metabolic reconstructions are currently available for hundreds of organisms. Co...
Integrated constraint-based metabolic and regulatory models can accurately predict cellular growth p...
The uncertain relationship between genotype and phenotype can make strain engineering an arduous tri...
The current survey aims to describe the main methodologies for extending the reconstruction and anal...
Quantitative models are increasingly being used to interrogate the metabolic pathways that are conta...
We focus on the application of constraint-based methodologies and, more specifically, flux balance a...
peer reviewedWe focus on the application of constraint-based methodologies and, more specifically, f...
The genotype -phenotype relationship is fundamental to biology. For decades this relationship has be...
Understanding the genotype-phenotype relationship is at the core of the life sciences. For the latte...
Genome-scale metabolic models (GEMs) have been widely used for quantitative exploration of the relat...
Constraint-based modelling methodologies can expedite the strain engineering process by helping in t...
Omic data analysis is steadily growing as a driver of basic and applied molecular biology research. ...
The uncertain relationship between genotype and phenotype can make strain engineering an arduous tri...
Genome-scale models of metabolism can illuminate the molecular basis of cell phenotypes. Since some ...
Omic data analysis is steadily growing as a driver of basic and applied molecular biology research. ...
<div><p>Genome-scale metabolic reconstructions are currently available for hundreds of organisms. Co...
Integrated constraint-based metabolic and regulatory models can accurately predict cellular growth p...
The uncertain relationship between genotype and phenotype can make strain engineering an arduous tri...
The current survey aims to describe the main methodologies for extending the reconstruction and anal...
Quantitative models are increasingly being used to interrogate the metabolic pathways that are conta...
We focus on the application of constraint-based methodologies and, more specifically, flux balance a...
peer reviewedWe focus on the application of constraint-based methodologies and, more specifically, f...
The genotype -phenotype relationship is fundamental to biology. For decades this relationship has be...
Understanding the genotype-phenotype relationship is at the core of the life sciences. For the latte...
Genome-scale metabolic models (GEMs) have been widely used for quantitative exploration of the relat...
Constraint-based modelling methodologies can expedite the strain engineering process by helping in t...
Omic data analysis is steadily growing as a driver of basic and applied molecular biology research. ...
The uncertain relationship between genotype and phenotype can make strain engineering an arduous tri...
Genome-scale models of metabolism can illuminate the molecular basis of cell phenotypes. Since some ...
Omic data analysis is steadily growing as a driver of basic and applied molecular biology research. ...