Escherichia coli chemotactic motion in spatiotemporally varying environments is studied by using a computational model based on a coarse-grained description of the intracellular signaling pathway dynamics. We find that the cell’s chemotaxis drift velocity vd is a constant in an exponential attractant concentration gradient [L]/exp(Gx). vd depends linearly on the exponential gradient G before it saturates when G is larger than a critical value GC. We find that GC is determined by the intracellular adaptation rate kR with a simple scaling law: GC!k 1=2 R. The linear dependence of vd on G = d(ln[L])/dx directly demonstrates E. coli’s ability in sensing the derivative of the logarithmic attractant concentration. The existence of the limiting gr...
We develop a mean-field theory for Escherichia coli chemotaxis based on the coupled spatiotemporal d...
Living cells sense and respond to constantly changing environmental conditions. Depending on the ty...
Chemotaxis allows flagellated bacteria to navigate in complex chemical environments, following nutri...
Escherichia coli chemotactic motion in spatiotemporally varying environments is studied by using a c...
Chemotaxis of the bacterium Escherichia coli is well understood in shallow chemical gradients, but i...
Chemotaxis of the bacterium Escherichia coli is well understood in shallow chemical gradients, but i...
Simulation of cellular behavior on multiple scales requires models that are sufficiently detailed to...
<div><p>Navigation of cells to the optimal environmental condition is critical for their survival an...
We studied the response of swimming Escherichia coli(E. coli) bacteria in a comprehensive set of wel...
<div><p>Navigation of cells to the optimal environmental condition is critical for their survival an...
Navigation of cells to the optimal environmental condition is critical for their survival and growth...
AbstractWe studied the response of swimming Escherichia coli (E. coli) bacteria in a comprehensive s...
We study Escherichia coli chemotaxis behavior in environments with spatially and temporally varying ...
We study Escherichia coli chemotaxis behavior in environments with spatially and temporally varying ...
We study Escherichia coli chemotaxis behavior in environments with spatially and temporally varying ...
We develop a mean-field theory for Escherichia coli chemotaxis based on the coupled spatiotemporal d...
Living cells sense and respond to constantly changing environmental conditions. Depending on the ty...
Chemotaxis allows flagellated bacteria to navigate in complex chemical environments, following nutri...
Escherichia coli chemotactic motion in spatiotemporally varying environments is studied by using a c...
Chemotaxis of the bacterium Escherichia coli is well understood in shallow chemical gradients, but i...
Chemotaxis of the bacterium Escherichia coli is well understood in shallow chemical gradients, but i...
Simulation of cellular behavior on multiple scales requires models that are sufficiently detailed to...
<div><p>Navigation of cells to the optimal environmental condition is critical for their survival an...
We studied the response of swimming Escherichia coli(E. coli) bacteria in a comprehensive set of wel...
<div><p>Navigation of cells to the optimal environmental condition is critical for their survival an...
Navigation of cells to the optimal environmental condition is critical for their survival and growth...
AbstractWe studied the response of swimming Escherichia coli (E. coli) bacteria in a comprehensive s...
We study Escherichia coli chemotaxis behavior in environments with spatially and temporally varying ...
We study Escherichia coli chemotaxis behavior in environments with spatially and temporally varying ...
We study Escherichia coli chemotaxis behavior in environments with spatially and temporally varying ...
We develop a mean-field theory for Escherichia coli chemotaxis based on the coupled spatiotemporal d...
Living cells sense and respond to constantly changing environmental conditions. Depending on the ty...
Chemotaxis allows flagellated bacteria to navigate in complex chemical environments, following nutri...