Abstract The Escherichia coli chemotaxis network, by which bacteria modulate their random run/tumble swimming pattern to navigate their environment, must cope with unavoidable number fluctuations (“noise”) in its molecular constituents like other signaling networks. The probability of clockwise (CW) flagellar rotation, or CW bias, is a measure of the chemotaxis network’s output, and its temporal fluctuations provide a proxy for network noise. Here we quantify fluctuations in the chemotaxis signaling network from the switching statistics of flagella, observed using time-resolved fluorescence microscopy of individual optically trapped E. coli cells. This approach allows noise to be quantified across the dynamic range of the network. Large CW ...
Unraveling bacterial strategies for spatial exploration is crucial for understanding the complexity ...
Living cells sense and respond to constantly changing environmental conditions. Depending on the ty...
Escherichia coli chemotactic motion in spatiotemporally varying environments is studied by using a c...
AbstractWe report the switching behavior of the full bacterial flagellum system that includes the fi...
We report the switching behavior of the full bacterial flagellum system that includes the filament a...
The dynamic switching of the bacterial flagellar motor regulates cell motility in bacterial chemotax...
AbstractThe dynamic switching of the bacterial flagellar motor regulates cell motility in bacterial ...
AbstractWe report the switching behavior of the full bacterial flagellum system that includes the fi...
Chemotaxis allows bacteria to respond and adapt to the environment, by tuning tumbling and running ...
The chemotactic pathway allows bacteria to respond and adapt to environmental changes, by tuning the...
AbstractEvolution has provided many organisms with sophisticated sensory systems that enable them to...
Switching of the direction of flagella rotations is the key control mechanism governing the chemotac...
Switching of the direction of flagella rotations is the key control mechanism governing the chemotac...
Switching of the direction of flagella rotations is the key control mechanism governing the chemotac...
Video techniques were used to study the coordination of different flagella on single filamentous cel...
Unraveling bacterial strategies for spatial exploration is crucial for understanding the complexity ...
Living cells sense and respond to constantly changing environmental conditions. Depending on the ty...
Escherichia coli chemotactic motion in spatiotemporally varying environments is studied by using a c...
AbstractWe report the switching behavior of the full bacterial flagellum system that includes the fi...
We report the switching behavior of the full bacterial flagellum system that includes the filament a...
The dynamic switching of the bacterial flagellar motor regulates cell motility in bacterial chemotax...
AbstractThe dynamic switching of the bacterial flagellar motor regulates cell motility in bacterial ...
AbstractWe report the switching behavior of the full bacterial flagellum system that includes the fi...
Chemotaxis allows bacteria to respond and adapt to the environment, by tuning tumbling and running ...
The chemotactic pathway allows bacteria to respond and adapt to environmental changes, by tuning the...
AbstractEvolution has provided many organisms with sophisticated sensory systems that enable them to...
Switching of the direction of flagella rotations is the key control mechanism governing the chemotac...
Switching of the direction of flagella rotations is the key control mechanism governing the chemotac...
Switching of the direction of flagella rotations is the key control mechanism governing the chemotac...
Video techniques were used to study the coordination of different flagella on single filamentous cel...
Unraveling bacterial strategies for spatial exploration is crucial for understanding the complexity ...
Living cells sense and respond to constantly changing environmental conditions. Depending on the ty...
Escherichia coli chemotactic motion in spatiotemporally varying environments is studied by using a c...