F_oF_1-ATPase is a motor protein complex that utilizes transmembrane ion flow to drive the synthesis of adenosine triphosphate (ATP) from adenosine diphosphate (ADP) and phosphate (Pi). While many theoretical models have been proposed to account for its rotary activity, most of them focus on the F_o or F_1 portions separately rather than the complex as a whole. Here, we propose a simple but new torque-coupled thermodynamic model of F_oF_1-ATPase. Solving this model at steady state, we find that the monotonic variation of each portion's efficiency becomes much more robust over a wide range of parameters when the F_o and F_1 portions are coupled together, as compared to cases when they are considered separately. Furthermore, the coupled model...
AbstractATP synthase uses a rotary mechanism to carry out its cellular function of manufacturing ATP...
AbstractF1-ATPase (or F1), the highly efficient and reversible biochemical engine, has motivated phy...
AbstractATP synthase (F-ATPase) produces ATP at the expense of ion-motive force or vice versa. It is...
Many essential functions of living cells are performed by nanoscale protein motors. The best charact...
AbstractFoF1 ATPase is the universal protein responsible for ATP synthesis. The enzyme comprises two...
F1-ATPase is a highly efficient molecular motor that can synthesize ATP driven by a mechanical torqu...
AbstractF1-ATPase catalyzes ATP hydrolysis to drive the central γ-shaft rotating inside a hexameric ...
We present an analysis of models based on current structural concepts of the F0F1 synthases, account...
AbstractF1Fo-ATP synthase is a ubiquitous membrane protein complex that efficiently converts a cell'...
AbstractF1-ATPase is a rotatory molecular motor fueled by ATP nucleotides. Different loads can be at...
AbstractATP synthase comprises two rotary motors in one. The F1 motor can generate a mechanical torq...
AbstractThe reversible protonmotive F0F1 ATPases perform the uniquely important function of balancin...
AbstractMost of the cellular ATP in living organisms is synthesized by the enzyme F1Fo-ATP synthase....
F$_{1}$-ATPase is a rotary molecular motor that \emph{in vivo} is subject to strong nonequilibrium d...
We present a chemomechanical network model of the rotary molecular motor F1-ATPase which quantitativ...
AbstractATP synthase uses a rotary mechanism to carry out its cellular function of manufacturing ATP...
AbstractF1-ATPase (or F1), the highly efficient and reversible biochemical engine, has motivated phy...
AbstractATP synthase (F-ATPase) produces ATP at the expense of ion-motive force or vice versa. It is...
Many essential functions of living cells are performed by nanoscale protein motors. The best charact...
AbstractFoF1 ATPase is the universal protein responsible for ATP synthesis. The enzyme comprises two...
F1-ATPase is a highly efficient molecular motor that can synthesize ATP driven by a mechanical torqu...
AbstractF1-ATPase catalyzes ATP hydrolysis to drive the central γ-shaft rotating inside a hexameric ...
We present an analysis of models based on current structural concepts of the F0F1 synthases, account...
AbstractF1Fo-ATP synthase is a ubiquitous membrane protein complex that efficiently converts a cell'...
AbstractF1-ATPase is a rotatory molecular motor fueled by ATP nucleotides. Different loads can be at...
AbstractATP synthase comprises two rotary motors in one. The F1 motor can generate a mechanical torq...
AbstractThe reversible protonmotive F0F1 ATPases perform the uniquely important function of balancin...
AbstractMost of the cellular ATP in living organisms is synthesized by the enzyme F1Fo-ATP synthase....
F$_{1}$-ATPase is a rotary molecular motor that \emph{in vivo} is subject to strong nonequilibrium d...
We present a chemomechanical network model of the rotary molecular motor F1-ATPase which quantitativ...
AbstractATP synthase uses a rotary mechanism to carry out its cellular function of manufacturing ATP...
AbstractF1-ATPase (or F1), the highly efficient and reversible biochemical engine, has motivated phy...
AbstractATP synthase (F-ATPase) produces ATP at the expense of ion-motive force or vice versa. It is...