AbstractWe studied the response of swimming Escherichia coli (E. coli) bacteria in a comprehensive set of well-controlled chemical concentration gradients using a newly developed microfluidic device and cell tracking imaging technique. In parallel, we carried out a multi-scale theoretical modeling of bacterial chemotaxis taking into account the relevant internal signaling pathway dynamics, and predicted bacterial chemotactic responses at the cellular level. By measuring the E. coli cell density profiles across the microfluidic channel at various spatial gradients of ligand concentration grad[L] and the average ligand concentration [L]¯near the peak chemotactic response region, we demonstrated unambiguously in both experiments and model simu...
Chemotaxis of the bacterium Escherichia coli is well understood in shallow chemical gradients, but i...
Living cells sense and respond to constantly changing environmental conditions. Depending on the ty...
AbstractWe present novel microfluidic experiments to quantify population-scale transport parameters ...
We studied the response of swimming Escherichia coli(E. coli) bacteria in a comprehensive set of wel...
AbstractWe studied the response of swimming Escherichia coli (E. coli) bacteria in a comprehensive s...
Escherichia coli chemotactic motion in spatiotemporally varying environments is studied by using a c...
Escherichia coli chemotactic motion in spatiotemporally varying environments is studied by using a c...
<div><p>Navigation of cells to the optimal environmental condition is critical for their survival an...
<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...
AbstractComplex networks of interacting molecular components of living cells are responsible for man...
Bacterial chemotaxis represents one of the simplest and best studied examples of unicellular behavio...
Chemotaxis allows flagellated bacteria to navigate in complex chemical environments, following nutri...
Swimming bacteria explore their environment by performing a random walk, which is biased in response...
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...
Living cells sense and respond to constantly changing environmental conditions. Depending on the ty...
AbstractWe present novel microfluidic experiments to quantify population-scale transport parameters ...
We studied the response of swimming Escherichia coli(E. coli) bacteria in a comprehensive set of wel...
AbstractWe studied the response of swimming Escherichia coli (E. coli) bacteria in a comprehensive s...
Escherichia coli chemotactic motion in spatiotemporally varying environments is studied by using a c...
Escherichia coli chemotactic motion in spatiotemporally varying environments is studied by using a c...
<div><p>Navigation of cells to the optimal environmental condition is critical for their survival an...
<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...
AbstractComplex networks of interacting molecular components of living cells are responsible for man...
Bacterial chemotaxis represents one of the simplest and best studied examples of unicellular behavio...
Chemotaxis allows flagellated bacteria to navigate in complex chemical environments, following nutri...
Swimming bacteria explore their environment by performing a random walk, which is biased in response...
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...
Living cells sense and respond to constantly changing environmental conditions. Depending on the ty...
AbstractWe present novel microfluidic experiments to quantify population-scale transport parameters ...