Background: In aerobically grown cells, iron homeostasis and oxidative stress are tightly linked processes implicated in a growing number of diseases. The deregulation of iron homeostasis due to gene defects or environmental stresses leads to a wide range of diseases with consequences for cellular metabolism that remain poorly understood. The modelling of iron homeostasis in relation to the main features of metabolism, energy production and oxidative stress may provide new clues to the ways in which changes in biological processes in a normal cell lead to disease. Results: Using a methodology based on probabilistic Boolean modelling, we constructed the first model of yeast iron homeostasis including oxygen-related reactions in the fram...
BackgroundIron-deficiency anemia is the most prevalent form of anemia world-wide. The yeast Saccharo...
Background: Oxidative stress is a consequence of normal and abnormal cellular metabolism and is link...
The field of Metabolic Engineering (ME) has gained a major importance, since it allows the design of...
Metabolic networks adapt to changes in their environment by modulating the activity of their enzymes...
Iron is essential for all known life due to its redox properties; however, these same properties can...
Mitochondria are a hallmark of eukaryal cells and play an important role in cellular metabolism. The...
Iron is a crucial nutrient in most living systems. It forms the active centers of many proteins tha...
Genome-scale metabolic models (GEMs) can be used to evaluate genotype-phenotype relationships and th...
Iron is essential for all known life due to its redox properties; however, these same properties can...
Abstract Background Iron-deficiency anemia is the mos...
An iterative approach that integrates high-throughput measurements of yeast deletion mutants and flu...
Advances in biological techniques have led to the availability of genome-scale metabolic reconstruct...
The interplay between nutrient-induced signaling and metabolism plays an important role in maintaini...
The large size of metabolic networks entails an overwhelming multiplicity in the possible steady-sta...
The large size of metabolic networks entails an overwhelming multiplicity in the possible steady-sta...
BackgroundIron-deficiency anemia is the most prevalent form of anemia world-wide. The yeast Saccharo...
Background: Oxidative stress is a consequence of normal and abnormal cellular metabolism and is link...
The field of Metabolic Engineering (ME) has gained a major importance, since it allows the design of...
Metabolic networks adapt to changes in their environment by modulating the activity of their enzymes...
Iron is essential for all known life due to its redox properties; however, these same properties can...
Mitochondria are a hallmark of eukaryal cells and play an important role in cellular metabolism. The...
Iron is a crucial nutrient in most living systems. It forms the active centers of many proteins tha...
Genome-scale metabolic models (GEMs) can be used to evaluate genotype-phenotype relationships and th...
Iron is essential for all known life due to its redox properties; however, these same properties can...
Abstract Background Iron-deficiency anemia is the mos...
An iterative approach that integrates high-throughput measurements of yeast deletion mutants and flu...
Advances in biological techniques have led to the availability of genome-scale metabolic reconstruct...
The interplay between nutrient-induced signaling and metabolism plays an important role in maintaini...
The large size of metabolic networks entails an overwhelming multiplicity in the possible steady-sta...
The large size of metabolic networks entails an overwhelming multiplicity in the possible steady-sta...
BackgroundIron-deficiency anemia is the most prevalent form of anemia world-wide. The yeast Saccharo...
Background: Oxidative stress is a consequence of normal and abnormal cellular metabolism and is link...
The field of Metabolic Engineering (ME) has gained a major importance, since it allows the design of...