In nature as well as in the context of infection and medical applications, bacteria often have to move in highly complex environments such as soil or tissues. Previous studies have shown that bacteria strongly interact with their surroundings and are often guided by confinements. Here, we investigate theoretically how the dispersal of swimming bacteria can be augmented by microfluidic environments and validate our theoretical predictions experimentally. We consider a system of bacteria performing the prototypical run-and-tumble motion inside a labyrinth with square lattice geometry. Narrow channels between the square obstacles limit the possibility of bacteria to reorient during tumbling events to an area where channels cross. Thus, by vary...
Active matter theory studies the collective behaviour of self-propelled organisms or objects. Althou...
Most bacteria at certain stages of their life cycle are able to move actively; they can swim in a li...
30 pages, 10 figuresUnderstanding flow and transport of bacteria in porous media is crucial to tech...
We used microfluidic tools and high-speed time-lapse microscopy to record trajectories of the soil b...
Bacterial movement in confined spaces is routinely encountered either in a natural environment or in...
Living organisms often display adaptive strategies that allow them to move efficiently even in stron...
Bacteria commonly live in structured communities that affect human health and influence ecological s...
We have studied active and passive forms of pattern formation and synchronized motion in high-densit...
The natural habitats of planktonic and swimming microorganisms, from algae in the oceans to bacteria...
Understanding the motility behavior of bacteria in confining microenvironments, in which they search...
Motile subpopulations in microbial communities are believed to be important for dispersal, quest for...
Most bacteria at certain stages of their life cycle are able to move actively; they can swim in a li...
It has been shown that a nanoliter chamber separated by a wall of asymmetric obstacles can lead to a...
The natural habitat of many bacterial swimmers is dominated by interfaces and narrow interstitial sp...
The role of activity on the hydrodynamic dispersion of bacteria in a model porous medium is studied ...
Active matter theory studies the collective behaviour of self-propelled organisms or objects. Althou...
Most bacteria at certain stages of their life cycle are able to move actively; they can swim in a li...
30 pages, 10 figuresUnderstanding flow and transport of bacteria in porous media is crucial to tech...
We used microfluidic tools and high-speed time-lapse microscopy to record trajectories of the soil b...
Bacterial movement in confined spaces is routinely encountered either in a natural environment or in...
Living organisms often display adaptive strategies that allow them to move efficiently even in stron...
Bacteria commonly live in structured communities that affect human health and influence ecological s...
We have studied active and passive forms of pattern formation and synchronized motion in high-densit...
The natural habitats of planktonic and swimming microorganisms, from algae in the oceans to bacteria...
Understanding the motility behavior of bacteria in confining microenvironments, in which they search...
Motile subpopulations in microbial communities are believed to be important for dispersal, quest for...
Most bacteria at certain stages of their life cycle are able to move actively; they can swim in a li...
It has been shown that a nanoliter chamber separated by a wall of asymmetric obstacles can lead to a...
The natural habitat of many bacterial swimmers is dominated by interfaces and narrow interstitial sp...
The role of activity on the hydrodynamic dispersion of bacteria in a model porous medium is studied ...
Active matter theory studies the collective behaviour of self-propelled organisms or objects. Althou...
Most bacteria at certain stages of their life cycle are able to move actively; they can swim in a li...
30 pages, 10 figuresUnderstanding flow and transport of bacteria in porous media is crucial to tech...