We used the technique of electrorotation to apply steadily increasing external torque to tethered cells of the bacterium Escherichia coli while continuously recording the speed of cell rotation. We found that the bacterial flagellar motor generates constant torque when rotating forward at low speeds and constant but considerably higher torque when rotating backward. At intermediate torques, the motor stalls. The torque-speed relationship is the same in both directional modes of switching motors. Motors forced backward usually break, either suddenly and irreversibly or progressively. Motors broken progressively rotate predominantly at integral multiples of a unitary speed during the course of both breaking and subsequent recovery, as expecte...
The purpose of this work was to study the changes in rotation rate of the bacterial motor and to try...
The bacterial flagellar motor (BFM) rotates hundreds of times per second to propel bacteria, driven ...
The bacterial flagellar motor (BFM) rotates hundreds of times per second to propel bacteria driven b...
We used the technique of electrorotation to apply steadily increasing external torque to tethered ce...
In earlier work in which electrorotation was used to apply external torque to tethered cells of the ...
AbstractThe technique of electrorotation was used to apply torque to cells of the bacterium Escheric...
Cells of the bacterium Escherichia coli were tethered and spun in a high-frequency rotating electric...
Bacterial flagella are driven by a rotary motor that is energized by an electrochemical ion gradient...
It is becoming clear that the bacterial flagellar motor output is important not only for bacterial l...
AbstractThe output of a rotary motor is characterized by its torque and speed. We measured the torqu...
Torque is generated in the rotary motor at the base of the bacterial flagellum by ion translocating ...
ABSTRACT It is becoming clear that the bacterial flagellar motor output is important not only for ba...
A bacterial ftagellum is driven by a reversible rotary motor. The power input is determined by proto...
The bacterial flagellar motor is a rotary motor in the cell envelope of bacteria that couples ion fl...
Torque is generated in the rotary motor at the base of the bacterial flagellum by ion translocating ...
The purpose of this work was to study the changes in rotation rate of the bacterial motor and to try...
The bacterial flagellar motor (BFM) rotates hundreds of times per second to propel bacteria, driven ...
The bacterial flagellar motor (BFM) rotates hundreds of times per second to propel bacteria driven b...
We used the technique of electrorotation to apply steadily increasing external torque to tethered ce...
In earlier work in which electrorotation was used to apply external torque to tethered cells of the ...
AbstractThe technique of electrorotation was used to apply torque to cells of the bacterium Escheric...
Cells of the bacterium Escherichia coli were tethered and spun in a high-frequency rotating electric...
Bacterial flagella are driven by a rotary motor that is energized by an electrochemical ion gradient...
It is becoming clear that the bacterial flagellar motor output is important not only for bacterial l...
AbstractThe output of a rotary motor is characterized by its torque and speed. We measured the torqu...
Torque is generated in the rotary motor at the base of the bacterial flagellum by ion translocating ...
ABSTRACT It is becoming clear that the bacterial flagellar motor output is important not only for ba...
A bacterial ftagellum is driven by a reversible rotary motor. The power input is determined by proto...
The bacterial flagellar motor is a rotary motor in the cell envelope of bacteria that couples ion fl...
Torque is generated in the rotary motor at the base of the bacterial flagellum by ion translocating ...
The purpose of this work was to study the changes in rotation rate of the bacterial motor and to try...
The bacterial flagellar motor (BFM) rotates hundreds of times per second to propel bacteria, driven ...
The bacterial flagellar motor (BFM) rotates hundreds of times per second to propel bacteria driven b...