SummaryTemperature is a global factor that affects the performance of all intracellular networks. Robustness against temperature variations is thus expected to be an essential network property, particularly in organisms without inherent temperature control. Here, we combine experimental analyses with computational modeling to investigate thermal robustness of signaling in chemotaxis of Escherichia coli, a relatively simple and well-established model for systems biology. We show that steady-state and kinetic pathway parameters that are essential for chemotactic performance are indeed temperature-compensated in the entire physiological range. Thermal robustness of steady-state pathway output is ensured at several levels by mutual compensation...
Cellular biochemical networks have to function in a noisy environment using imperfect components. In...
Bacteria move towards favourable and away from toxic environments by changing their swimming pattern...
AbstractThe chemotaxis network of the bacterium Escherichia coli is perhaps the most studied model f...
Temperature is a global factor that affects the performance of all intracellular networks. Robustnes...
Biological systems are exposed to various perturbations that affect performance of the cellular netw...
AbstractThermotaxis is the phenomenon where an organism directs its movement toward its preferred te...
BACKGROUND: Extracellular stimuli in chemotaxis of Escherichia coli and other bacteria are processed...
Thermotaxis is the phenomenon where an organism directs its movement toward its preferred temperatur...
In bacteria various tactic responses are mediated by the same cellular pathway, but sensing of physi...
ABSTRACTThe signaling apparatus mediating bacterial chemotaxis can adapt to a wide range of persiste...
Abstract Background Extracellular stimuli in chemotaxis of Escherichia coli and other bacteria are p...
AbstractChemotaxis is the process, by which cells sense changes in their chemical environment and mo...
Temperature has a strong influence on most individual biochemical reactions. Despite this, many orga...
SummaryTemperature changes affect reaction kinetics. How do signaling pathways cope with such global...
Bacteria move towards favourable and away from toxic environments by changing their swimming pattern...
Cellular biochemical networks have to function in a noisy environment using imperfect components. In...
Bacteria move towards favourable and away from toxic environments by changing their swimming pattern...
AbstractThe chemotaxis network of the bacterium Escherichia coli is perhaps the most studied model f...
Temperature is a global factor that affects the performance of all intracellular networks. Robustnes...
Biological systems are exposed to various perturbations that affect performance of the cellular netw...
AbstractThermotaxis is the phenomenon where an organism directs its movement toward its preferred te...
BACKGROUND: Extracellular stimuli in chemotaxis of Escherichia coli and other bacteria are processed...
Thermotaxis is the phenomenon where an organism directs its movement toward its preferred temperatur...
In bacteria various tactic responses are mediated by the same cellular pathway, but sensing of physi...
ABSTRACTThe signaling apparatus mediating bacterial chemotaxis can adapt to a wide range of persiste...
Abstract Background Extracellular stimuli in chemotaxis of Escherichia coli and other bacteria are p...
AbstractChemotaxis is the process, by which cells sense changes in their chemical environment and mo...
Temperature has a strong influence on most individual biochemical reactions. Despite this, many orga...
SummaryTemperature changes affect reaction kinetics. How do signaling pathways cope with such global...
Bacteria move towards favourable and away from toxic environments by changing their swimming pattern...
Cellular biochemical networks have to function in a noisy environment using imperfect components. In...
Bacteria move towards favourable and away from toxic environments by changing their swimming pattern...
AbstractThe chemotaxis network of the bacterium Escherichia coli is perhaps the most studied model f...