AbstractThe bacterial flagellum is a self-assembling filament, which bacteria use for swimming. It is built from tens of thousands of flagellin monomers in a self-assembly process that involves translocation of the monomers through the flagellar interior, a channel, to the growing tip. Flagellum monomers are pumped into the filament at the base, move unfolded along the channel and then bind to the tip of the filament, thereby extending the growing flagellum. The flagellin translocation process, due to the flagellum maximum length of 20 μm, is an extreme example of protein transport through channels. Here, we derive a model for flagellin transport through the long confining channel, testing the key assumptions of the model through molecular ...
The bacterial flagellum is a self-assembling, nanomachine-like structure used for locomotion of many...
AbstractFlagellin is the subunit of the bacterial filament, the micrometer-long propeller of a bacte...
Flagella, the helical propellers that extend from the bacterial surface, are a paradigm for how comp...
AbstractThe bacterial flagellum is a self-assembling filament, which bacteria use for swimming. It i...
AbstractA bacterial flagellar filament is a cylindrical crystal of a protein known as flagellin. Fla...
The bacterial flagellum is a self-assembling nanomachine. The external flagellar filament, several t...
The bacterial flagellum is a self-assembling nanomachine. The external flagellar filament, several t...
Bacterial flagella are helical proteinaceous fibers, composed of the protein flagellin, that confer ...
Bacterial flagellar filaments grow at their distal ends, from flagellin that travels through a central ...
Flagella, the helical propellers that extend from the bacterial surface, are a paradigm for how comp...
The growth of bacterial flagellar filaments is a self-assembly process where flagellin molecules are...
Most bacteria swim in liquid environments by rotating one or several flagella. The long external fi...
Bacteria propel themselves through liquid environments using rotation of a propeller like organelle,...
The ‘nut-and-bolt’ mechanism of a bacteriophage-bacteria flagellum translocation motion is modelled ...
AbstractThe chemotaxis of bacteria such as Salmonella and Escherichia coli involves smooth swimming ...
The bacterial flagellum is a self-assembling, nanomachine-like structure used for locomotion of many...
AbstractFlagellin is the subunit of the bacterial filament, the micrometer-long propeller of a bacte...
Flagella, the helical propellers that extend from the bacterial surface, are a paradigm for how comp...
AbstractThe bacterial flagellum is a self-assembling filament, which bacteria use for swimming. It i...
AbstractA bacterial flagellar filament is a cylindrical crystal of a protein known as flagellin. Fla...
The bacterial flagellum is a self-assembling nanomachine. The external flagellar filament, several t...
The bacterial flagellum is a self-assembling nanomachine. The external flagellar filament, several t...
Bacterial flagella are helical proteinaceous fibers, composed of the protein flagellin, that confer ...
Bacterial flagellar filaments grow at their distal ends, from flagellin that travels through a central ...
Flagella, the helical propellers that extend from the bacterial surface, are a paradigm for how comp...
The growth of bacterial flagellar filaments is a self-assembly process where flagellin molecules are...
Most bacteria swim in liquid environments by rotating one or several flagella. The long external fi...
Bacteria propel themselves through liquid environments using rotation of a propeller like organelle,...
The ‘nut-and-bolt’ mechanism of a bacteriophage-bacteria flagellum translocation motion is modelled ...
AbstractThe chemotaxis of bacteria such as Salmonella and Escherichia coli involves smooth swimming ...
The bacterial flagellum is a self-assembling, nanomachine-like structure used for locomotion of many...
AbstractFlagellin is the subunit of the bacterial filament, the micrometer-long propeller of a bacte...
Flagella, the helical propellers that extend from the bacterial surface, are a paradigm for how comp...