Understanding the organization of reaction fluxes in cellular metabolism from the stoichiometry and the topology of the underlying biochemical network is a central issue in systems biology. In this task, it is important to devise reasonable approximation schemes that rely on the stoichiometric data only, because full-scale kinetic approaches are computationally affordable only for small networks (e. g., red blood cells, approximate to 50 reactions). Methods commonly used are based on finding the stationary flux configurations that satisfy mass-balance conditions for metabolites, often coupling them to local optimization rules (e. g., maximization of biomass production) to reduce the size of the solution space to a single point. Such methods...
Growth rate is a near-universal selective pressure across microbial species. High growth rates requi...
Motivation: Genome-scale metabolic networks can be modeled in a constraint-based fashion. Reaction s...
Growth rate is a near-universal selective pressure across microbial species. High growth rates requi...
Understanding the organization of reaction fluxes in cellular metabolism from the stoichiometry and ...
<div><p>High-throughput data generation and genome-scale stoichiometric models have greatly facilita...
High-throughput data generation and genome-scale stoichiometric models have greatly facilitated the ...
High-throughput data generation and genome-scale stoichiometric models have greatly facilitated the ...
The present thesis represents an effort in the emerging area of metabolic engineering. While the phy...
Metabolism of living cells converts substrates into metabolic energy, redox potential and metabolic ...
High-throughput data generation and genome-scale stoichiometric models have greatly fa-cilitated the...
AbstractConstraint-based methods provide powerful computational techniques to allow understanding an...
By flux analysis one generically indicates a class of constraint-based approaches to the study of bi...
Growth rate is a near-universal selective pressure across microbial species. High growth rates requi...
AbstractA biochemical species is called producible in a constraints-based metabolic model if a feasi...
A computational procedure for identifying the minimal set of metabolic reactions capable of supporti...
Growth rate is a near-universal selective pressure across microbial species. High growth rates requi...
Motivation: Genome-scale metabolic networks can be modeled in a constraint-based fashion. Reaction s...
Growth rate is a near-universal selective pressure across microbial species. High growth rates requi...
Understanding the organization of reaction fluxes in cellular metabolism from the stoichiometry and ...
<div><p>High-throughput data generation and genome-scale stoichiometric models have greatly facilita...
High-throughput data generation and genome-scale stoichiometric models have greatly facilitated the ...
High-throughput data generation and genome-scale stoichiometric models have greatly facilitated the ...
The present thesis represents an effort in the emerging area of metabolic engineering. While the phy...
Metabolism of living cells converts substrates into metabolic energy, redox potential and metabolic ...
High-throughput data generation and genome-scale stoichiometric models have greatly fa-cilitated the...
AbstractConstraint-based methods provide powerful computational techniques to allow understanding an...
By flux analysis one generically indicates a class of constraint-based approaches to the study of bi...
Growth rate is a near-universal selective pressure across microbial species. High growth rates requi...
AbstractA biochemical species is called producible in a constraints-based metabolic model if a feasi...
A computational procedure for identifying the minimal set of metabolic reactions capable of supporti...
Growth rate is a near-universal selective pressure across microbial species. High growth rates requi...
Motivation: Genome-scale metabolic networks can be modeled in a constraint-based fashion. Reaction s...
Growth rate is a near-universal selective pressure across microbial species. High growth rates requi...