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1 wrz 2001 · ATP synthase is a ubiquitous, highly conserved enzyme that catalyses the formation of ATP from ADP and P i using a unique rotary motor mechanism. The enzyme is located in the inner membrane of...
- Nature
Chętnie wyświetlilibyśmy opis, ale witryna, którą oglądasz,...
- The six steps of the complete F 1 -ATPase rotary catalytic cycle - Nature
F 1 F o ATP synthase is a biological rotary motor that...
- Nature
3 sie 2021 · F 1 F o ATP synthase is a biological rotary motor that utilizes a rotary catalytic mechanism to couple proton translocation across a membrane with the synthesis of adenosine...
26 lis 1999 · Adenosine triphosphate (ATP) synthase contains a rotary motor involved in biological energy conversion. Its membrane-embedded F 0 sector has a rotation generator fueled by the proton-motive force, which provides the energy required for the synthesis of ATP by the F 1 domain.
ATP synthase is composed of the F 1 and F 0 motor sharing a common rotary shaft (gray). A stator stalk connects two motors ( red ) that do not slip. The F 0 motor generates a rotary torque powered by the proton flow-enforcing F 1 motor to synthesize ATP.
Three protein motors have been unambiguously identified as rotary engines: the bacterial flagellar motor and the two motors that constitute ATP synthase (F 0 F 1 ATPase). Of these, the bacterial flagellar motor and F 0 motors derive their energy from a transmembrane ion-motive force, whereas the F 1 motor is driven by ATP hydrolysis.
26 lis 1999 · Adenosine triphosphate (ATP) synthase contains a rotary motor involved in biological energy conversion. Its membrane-embedded F0 sector has a rotation generator fueled by the proton-motive force, which provides the energy required for the synthesis of ATP by the F1 domain.
30 kwi 2020 · ATP synthase is an enzyme that drives the formation of ATP from ADP and Pi. It is a molecular rotary motor composed of F1 and Fo subunits and couples ATP synthesis during cellular respiration to an electrochemical gradient created by differences in proton concentration across mitochondrial membranes.