Bacteria propel and change direction by rotating long, helical filaments, called flagella. The number of flagella, their arrangement on the cell body and their sense of rotation hypothetically determine the locomotion characteristics of a species. The movement of the most rapid microorganisms has in particular remained unexplored because of additional experimental limitations. We show that magnetotactic cocci with two flagella bundles on one pole swim faster than 500 µm·s-1 along a double helical path, making them one of the fastest natural microswimmers. We additionally reveal that the cells reorient in less than 5 ms, an order of magnitude faster than reported so far for any other bacteria. Using hydrodynamic modeling, we demonstrate that...
When vegetative bacteria that can swim are grown in a rich medium on an agar surface, they become mu...
Single flagellated bacteria are ubiquitous in nature. They exhibit various swimming modes using thei...
Bacterial flagella are helical proteinaceous fibers, composed of the protein flagellin, that confer ...
International audienceBacteria propel and change direction by rotating long, helical filaments, call...
Funder: Max-Planck-Gesellschaft; FundRef: http://dx.doi.org/10.13039/501100004189Funder: IMPRS on Mu...
Many theoretical studies of bacterial locomotion adopt a simple model for the organism consisting of...
Microscopic-scale swimming has been a very active area of research in the last couple of decades. Th...
Flagella are essential organelles of bacteria enabling their swimming motility. While monotrichous o...
Living organisms often display adaptive strategies that allow them to move efficiently even in stron...
Peritrichously-flagellated bacteria, such as Escherichia coli, self-propel in fluids by using specia...
Chemotaxis underpins important ecological processes in marine bacteria, from the association with pr...
Swimming speeds and flagellar rotation rates of individual free-swimming Vibrio alginolyticus cells ...
Most bacteria swim in liquid environments by rotating one or several flagella. The long external fi...
Bacteria have evolved many different means of generating movement. In this issue of Cell, Shaevitz e...
Artificial bacterial flagella (ABFs) consist of helical tails resembling natural flagella fabricated...
When vegetative bacteria that can swim are grown in a rich medium on an agar surface, they become mu...
Single flagellated bacteria are ubiquitous in nature. They exhibit various swimming modes using thei...
Bacterial flagella are helical proteinaceous fibers, composed of the protein flagellin, that confer ...
International audienceBacteria propel and change direction by rotating long, helical filaments, call...
Funder: Max-Planck-Gesellschaft; FundRef: http://dx.doi.org/10.13039/501100004189Funder: IMPRS on Mu...
Many theoretical studies of bacterial locomotion adopt a simple model for the organism consisting of...
Microscopic-scale swimming has been a very active area of research in the last couple of decades. Th...
Flagella are essential organelles of bacteria enabling their swimming motility. While monotrichous o...
Living organisms often display adaptive strategies that allow them to move efficiently even in stron...
Peritrichously-flagellated bacteria, such as Escherichia coli, self-propel in fluids by using specia...
Chemotaxis underpins important ecological processes in marine bacteria, from the association with pr...
Swimming speeds and flagellar rotation rates of individual free-swimming Vibrio alginolyticus cells ...
Most bacteria swim in liquid environments by rotating one or several flagella. The long external fi...
Bacteria have evolved many different means of generating movement. In this issue of Cell, Shaevitz e...
Artificial bacterial flagella (ABFs) consist of helical tails resembling natural flagella fabricated...
When vegetative bacteria that can swim are grown in a rich medium on an agar surface, they become mu...
Single flagellated bacteria are ubiquitous in nature. They exhibit various swimming modes using thei...
Bacterial flagella are helical proteinaceous fibers, composed of the protein flagellin, that confer ...