The rotary motor enzyme FoF1-ATP synthase uses the proton-motive force across a membrane to synthesize ATP from ADP and Pi (H2PO4(-)) under cellular conditions that favor the hydrolysis reaction by a factor of 2 × 10(5). This remarkable ability to drive a reaction away from equilibrium by harnessing an external force differentiates it from an ordinary enzyme, which increases the rate of reaction without shifting the equilibrium. Hydrolysis takes place in the neighborhood of one conformation of the catalytic moiety F1-ATPase, whose structure is known from crystallography. By use of molecular dynamics simulations we trap a second structure, which is rotated by 40° from the catalytic dwell conformation and represents the state associated with ...
F<sub>1</sub>-ATPase, the catalytic domain of ATP synthase, synthesizes most of the ATP in living or...
AbstractUsing molecular dynamics, we study the unbinding of ATP in F1-ATPase from its tight binding ...
F1-ATPase is a highly efficient molecular motor that can synthesize ATP driven by a mechanical torqu...
The rotary motor enzyme FoF1-ATP synthase uses the protonmotive force across a membrane to synthesiz...
AbstractUsing molecular dynamics, we study the unbinding of ATP in F1-ATPase from its tight binding ...
Many essential functions of living cells are performed by nanoscale protein motors. The best charact...
AbstractMost of the cellular ATP in living organisms is synthesized by the enzyme F1Fo-ATP synthase....
F-1-ATPase (F-1) is the catalytic portion of ATP synthase, a rotary motor protein that couples proto...
AbstractAccording to the different nucleotide occupancies of the F1-ATPase β-subunits and due to the...
AbstractF1-ATPase is a rotary molecular motor in which the central γ subunit rotates inside a cylind...
AbstractATP synthase uses a rotary mechanism to carry out its cellular function of manufacturing ATP...
SummaryF1-ATPase is a rotary molecular motor that proceeds in 120° steps, each driven by ATP hydroly...
F1-ATPase, the catalytic domain of ATP synthase, synthesizes most of the ATP in living organisms. Ru...
AbstractF1-ATPase (F1) is a reversible ATP-driven rotary motor protein. When its rotary shaft is rev...
F_1F_o-ATP synthase is the enzyme responsible for most of the ATP synthesis in living systems. The c...
F<sub>1</sub>-ATPase, the catalytic domain of ATP synthase, synthesizes most of the ATP in living or...
AbstractUsing molecular dynamics, we study the unbinding of ATP in F1-ATPase from its tight binding ...
F1-ATPase is a highly efficient molecular motor that can synthesize ATP driven by a mechanical torqu...
The rotary motor enzyme FoF1-ATP synthase uses the protonmotive force across a membrane to synthesiz...
AbstractUsing molecular dynamics, we study the unbinding of ATP in F1-ATPase from its tight binding ...
Many essential functions of living cells are performed by nanoscale protein motors. The best charact...
AbstractMost of the cellular ATP in living organisms is synthesized by the enzyme F1Fo-ATP synthase....
F-1-ATPase (F-1) is the catalytic portion of ATP synthase, a rotary motor protein that couples proto...
AbstractAccording to the different nucleotide occupancies of the F1-ATPase β-subunits and due to the...
AbstractF1-ATPase is a rotary molecular motor in which the central γ subunit rotates inside a cylind...
AbstractATP synthase uses a rotary mechanism to carry out its cellular function of manufacturing ATP...
SummaryF1-ATPase is a rotary molecular motor that proceeds in 120° steps, each driven by ATP hydroly...
F1-ATPase, the catalytic domain of ATP synthase, synthesizes most of the ATP in living organisms. Ru...
AbstractF1-ATPase (F1) is a reversible ATP-driven rotary motor protein. When its rotary shaft is rev...
F_1F_o-ATP synthase is the enzyme responsible for most of the ATP synthesis in living systems. The c...
F<sub>1</sub>-ATPase, the catalytic domain of ATP synthase, synthesizes most of the ATP in living or...
AbstractUsing molecular dynamics, we study the unbinding of ATP in F1-ATPase from its tight binding ...
F1-ATPase is a highly efficient molecular motor that can synthesize ATP driven by a mechanical torqu...