AbstractBacterial flagella can adopt several different helical shapes in response to varying environmental conditions. A geometric model by Calladine ascribes these discrete shape changes to cooperative transitions between two stable tertiary structures of the constituent protein, flagellin, and predicts an ordered set of 12 helical states called polymorphic forms. Using long polymers of purified flagellin, we demonstrate controlled, reversible transformations between different polymorphic forms. While pulling on a single filament using an optical tweezer, we record the progressive transformation of the filament and also measure the force-extension curve. Both normal and coiled polymorphic forms stretch elastically with a bending stiffness ...
Hydrodynamics predicts that swimming bacteria generate a propulsion force when a helical flagellum r...
AbstractMost swimming bacteria produce thrust by rotating helical filaments called flagella. Typical...
Many types of bacteria swim by rotating a bundle of helical filaments also called flagella. Each fil...
AbstractBacterial flagella can adopt several different helical shapes in response to varying environ...
AbstractMany types of bacteria propel themselves using elongated structures known as flagella. The b...
Bacterial flagella assume different helical shapes during the tumbling phase of a bacterium but also...
Bacteria like Escherichia coli and Salmonella typhimurium swim by rotating flagella. These are long ...
AbstractThe corkscrew-like flagellar filaments emerging from the surface of bacteria such as Salmone...
Force-induced reversible transformations between coiled and normal polymorphs of bacterial flagella...
Bacterial flagellar filaments are assembled by tens of thousands flagellin subunits, forming 11 heli...
AbstractCertain motile bacteria employ rotating flagella for propulsion. The relative flexibility of...
Twenty years ago the experiments of Hotani revealed that flagellar polymorphism (the ability of bact...
AbstractA particle-based hybrid method of elastic network model and smooth-particle hydrodynamics ha...
Bacterial flagellar filaments can undergo a polymorphic phase transition in both vitro and vivo envi...
Polymorphism has been the subject of investigation across different research disciplines. In biology...
Hydrodynamics predicts that swimming bacteria generate a propulsion force when a helical flagellum r...
AbstractMost swimming bacteria produce thrust by rotating helical filaments called flagella. Typical...
Many types of bacteria swim by rotating a bundle of helical filaments also called flagella. Each fil...
AbstractBacterial flagella can adopt several different helical shapes in response to varying environ...
AbstractMany types of bacteria propel themselves using elongated structures known as flagella. The b...
Bacterial flagella assume different helical shapes during the tumbling phase of a bacterium but also...
Bacteria like Escherichia coli and Salmonella typhimurium swim by rotating flagella. These are long ...
AbstractThe corkscrew-like flagellar filaments emerging from the surface of bacteria such as Salmone...
Force-induced reversible transformations between coiled and normal polymorphs of bacterial flagella...
Bacterial flagellar filaments are assembled by tens of thousands flagellin subunits, forming 11 heli...
AbstractCertain motile bacteria employ rotating flagella for propulsion. The relative flexibility of...
Twenty years ago the experiments of Hotani revealed that flagellar polymorphism (the ability of bact...
AbstractA particle-based hybrid method of elastic network model and smooth-particle hydrodynamics ha...
Bacterial flagellar filaments can undergo a polymorphic phase transition in both vitro and vivo envi...
Polymorphism has been the subject of investigation across different research disciplines. In biology...
Hydrodynamics predicts that swimming bacteria generate a propulsion force when a helical flagellum r...
AbstractMost swimming bacteria produce thrust by rotating helical filaments called flagella. Typical...
Many types of bacteria swim by rotating a bundle of helical filaments also called flagella. Each fil...