Adaptability is an essential property of many sensory systems, enabling maintenance of a sensitive response over a range of background stimulus levels. In bacterial chemotaxis, adaptation to the preset level of pathway activity is achieved through an integral feedback mechanism based on activity-dependent methylation of chemoreceptors. It has been argued that this architecture ensures precise and robust adaptation regardless of the ambient ligand concentration, making perfect adaptation a celebrated property of the chemotaxis system. However, possible deviations from such ideal adaptive behavior and its consequences for chemotaxis have not been explored in detail. Here we show that the chemotaxis pathway in Escherichia coli shows increasing...
In bacterial chemotaxis, several types of ligand-specific receptors form mixed clusters, wherein rec...
In many sensory systems, transmembrane receptors are spatially organized in large clusters. Such arr...
<div><p>Bacteria navigate within inhomogeneous environments by temporally comparing concentrations o...
Adaptability is an essential property of many sensory systems, enabling maintenance of a sensitive r...
Adaptability is an essential property of many sensory systems, enabling maintenance of a sensitive r...
The chemotaxis network of the bacterium Escherichia coli is perhaps the most studied model for adapt...
AbstractThe chemotaxis network of the bacterium Escherichia coli is perhaps the most studied model f...
ABSTRACTThe signaling apparatus mediating bacterial chemotaxis can adapt to a wide range of persiste...
Adaptation of the chemotaxis sensory pathway of the bacterium Escherichia coli is integral for detec...
Adaptation of the chemotaxis sensory pathway of the bacterium Escherichia coli is integral for detec...
AbstractThe chemotaxis network of the bacterium Escherichia coli is perhaps the most studied model f...
ABSTRACTThe signaling apparatus mediating bacterial chemotaxis can adapt to a wide range of persiste...
<div><p>In many sensory systems, transmembrane receptors are spatially organized in large clusters. ...
We present a model of the chemotactic mechanism of Escherichia coli that exhibits both initial excit...
In the bacterial chemotaxis network, receptor clusters process input1–3, and flagellar motors genera...
In bacterial chemotaxis, several types of ligand-specific receptors form mixed clusters, wherein rec...
In many sensory systems, transmembrane receptors are spatially organized in large clusters. Such arr...
<div><p>Bacteria navigate within inhomogeneous environments by temporally comparing concentrations o...
Adaptability is an essential property of many sensory systems, enabling maintenance of a sensitive r...
Adaptability is an essential property of many sensory systems, enabling maintenance of a sensitive r...
The chemotaxis network of the bacterium Escherichia coli is perhaps the most studied model for adapt...
AbstractThe chemotaxis network of the bacterium Escherichia coli is perhaps the most studied model f...
ABSTRACTThe signaling apparatus mediating bacterial chemotaxis can adapt to a wide range of persiste...
Adaptation of the chemotaxis sensory pathway of the bacterium Escherichia coli is integral for detec...
Adaptation of the chemotaxis sensory pathway of the bacterium Escherichia coli is integral for detec...
AbstractThe chemotaxis network of the bacterium Escherichia coli is perhaps the most studied model f...
ABSTRACTThe signaling apparatus mediating bacterial chemotaxis can adapt to a wide range of persiste...
<div><p>In many sensory systems, transmembrane receptors are spatially organized in large clusters. ...
We present a model of the chemotactic mechanism of Escherichia coli that exhibits both initial excit...
In the bacterial chemotaxis network, receptor clusters process input1–3, and flagellar motors genera...
In bacterial chemotaxis, several types of ligand-specific receptors form mixed clusters, wherein rec...
In many sensory systems, transmembrane receptors are spatially organized in large clusters. Such arr...
<div><p>Bacteria navigate within inhomogeneous environments by temporally comparing concentrations o...