The bacterial flagellar motor is an amazing nanomachine: built from approximately 25 different proteins, it uses an electrochemical ion gradient to drive rotation at speeds of up to 300 Hz (refs 1, 2). The flagellar motor consists of a fixed, membrane-embedded, torque-generating stator and a typically bidirectional, spinning rotor that changes direction in response to chemotactic signals. Most structural analyses so far have targeted the purified rotor (refs 3, 4), and hence little is known about the stator and its interactions. Here we show, using electron cryotomography of whole cells, the in situ structure of the complete flagellar motor from the spirochaete Treponema primitia at 7 nm resolution. Twenty individual motor particles were co...
Members of the bacterial phylum Spirochaetes are generally helical cells propelled by periplasmic fl...
The bacterial flagellar motor is the most complex structure in the bacterial cell, driving the ion-d...
In situ structural information on molecular machines can be invaluable in understanding their assemb...
The bacterial flagellar motor is a remarkable nanomachine that provides motility through flagellar r...
The bacterial flagellar motor is a remarkable nanomachine that provides motility through flagellar r...
The bacterial flagellum is one of nature’s most amazing and well-studied nanomachines. Its cell-wall...
The bacterial flagellar motor, a cell-envelope-embedded macromolecular machine that functions as a c...
The bacterial flagellar motor is a cell-envelope-embedded macromolecular machine that functions as a...
The bacterial flagellar motor, a cell-envelope-embedded macromolecular machine that functions as a c...
Although it is known that diverse bacterial flagellar motors produce different torques, the mechanis...
The bacterial flagellar motor is a molecular machine that can rotate the flagellar\r\nfilament at hi...
The bacterial flagellum is the prototypical protein nanomachine and comprises a rotating helical pro...
Bacteria can be propelled in liquids by flagellar filaments that are attached to and moved by flagel...
The bacterial flagellar motor (BFM) is a self-assembling rotary nanomachine. It converts a flux of c...
AbstractElectron cryomicroscopy of rotor complexes of the Salmonella typhimurium flagellar motor, ov...
Members of the bacterial phylum Spirochaetes are generally helical cells propelled by periplasmic fl...
The bacterial flagellar motor is the most complex structure in the bacterial cell, driving the ion-d...
In situ structural information on molecular machines can be invaluable in understanding their assemb...
The bacterial flagellar motor is a remarkable nanomachine that provides motility through flagellar r...
The bacterial flagellar motor is a remarkable nanomachine that provides motility through flagellar r...
The bacterial flagellum is one of nature’s most amazing and well-studied nanomachines. Its cell-wall...
The bacterial flagellar motor, a cell-envelope-embedded macromolecular machine that functions as a c...
The bacterial flagellar motor is a cell-envelope-embedded macromolecular machine that functions as a...
The bacterial flagellar motor, a cell-envelope-embedded macromolecular machine that functions as a c...
Although it is known that diverse bacterial flagellar motors produce different torques, the mechanis...
The bacterial flagellar motor is a molecular machine that can rotate the flagellar\r\nfilament at hi...
The bacterial flagellum is the prototypical protein nanomachine and comprises a rotating helical pro...
Bacteria can be propelled in liquids by flagellar filaments that are attached to and moved by flagel...
The bacterial flagellar motor (BFM) is a self-assembling rotary nanomachine. It converts a flux of c...
AbstractElectron cryomicroscopy of rotor complexes of the Salmonella typhimurium flagellar motor, ov...
Members of the bacterial phylum Spirochaetes are generally helical cells propelled by periplasmic fl...
The bacterial flagellar motor is the most complex structure in the bacterial cell, driving the ion-d...
In situ structural information on molecular machines can be invaluable in understanding their assemb...