Evolutionary success of an organism depends on its ability to express or adapt to constantly changing environmental conditions. Saccharomyces cerevisiae has evolved an elaborate genetic circuit to regulate the expression of galactose-metabolizing enzymes in the presence of galactose but in the absence of glucose. The circuit possesses molecular mechanisms such as multiple binding sites, cooperativity, autoregulation, nucleocytoplasmic shuttling, and substrate sensing mechanism. Furthermore, the GAL system consists of two positive (activating) feedback and one negative (repressing) feedback loops. These individual mechanisms, elucidated through experimental approach, can be integrated to obtain a system-wide behavior. Mathematical models in ...
The nucleocytoplasmic shuttling of the repressor Gal80p is known to play a pivotal role in the signa...
In the yeast Saccharomyces cerevisiae, the interplay between Gal3p, Gal80p and Gal4p determines the ...
With the expanding interest in cellular responses to dynamic environments, microfluidic devices have...
Evolutionary success of an organism depends on its ability to express or adapt to constantly changin...
The genetic regulatory network responds dynamically to perturbations in the intracellular and extrac...
The galactose uptake mechanism in yeast is a well-studied regulatory network. The regulatory players...
The GAL regulon in Saccharomyces cerevisiae is a well-characterized genetic network that is utilized...
In the yeast Saccharomyces cerevisiae, the interplay between galactose, Gal3p, Gal80p and Gal4p dete...
Quantitative traits are measurable phenotypes that show continuous variation over a wide phenotypic ...
Autoregulation and nucleocytoplasmic shuttling play important roles in the operation of the GAL regu...
Genetic switches are prevalent in nature, and provide cells with a strategy to adapt to changing env...
The GAL regulon of Saccharomyces cerevisiae provides a model for the study of eukaryotic gene regul...
Cells need to sense the environment in order to survive, in particular they need to detect nutrients...
The nucleocytoplasmic shuttling of the repressor Gal80p is known to play a pivotal role in the signa...
Recent experiments have revealed surprising behavior in the yeast galactose (GAL) pathway, one of th...
The nucleocytoplasmic shuttling of the repressor Gal80p is known to play a pivotal role in the signa...
In the yeast Saccharomyces cerevisiae, the interplay between Gal3p, Gal80p and Gal4p determines the ...
With the expanding interest in cellular responses to dynamic environments, microfluidic devices have...
Evolutionary success of an organism depends on its ability to express or adapt to constantly changin...
The genetic regulatory network responds dynamically to perturbations in the intracellular and extrac...
The galactose uptake mechanism in yeast is a well-studied regulatory network. The regulatory players...
The GAL regulon in Saccharomyces cerevisiae is a well-characterized genetic network that is utilized...
In the yeast Saccharomyces cerevisiae, the interplay between galactose, Gal3p, Gal80p and Gal4p dete...
Quantitative traits are measurable phenotypes that show continuous variation over a wide phenotypic ...
Autoregulation and nucleocytoplasmic shuttling play important roles in the operation of the GAL regu...
Genetic switches are prevalent in nature, and provide cells with a strategy to adapt to changing env...
The GAL regulon of Saccharomyces cerevisiae provides a model for the study of eukaryotic gene regul...
Cells need to sense the environment in order to survive, in particular they need to detect nutrients...
The nucleocytoplasmic shuttling of the repressor Gal80p is known to play a pivotal role in the signa...
Recent experiments have revealed surprising behavior in the yeast galactose (GAL) pathway, one of th...
The nucleocytoplasmic shuttling of the repressor Gal80p is known to play a pivotal role in the signa...
In the yeast Saccharomyces cerevisiae, the interplay between Gal3p, Gal80p and Gal4p determines the ...
With the expanding interest in cellular responses to dynamic environments, microfluidic devices have...