AbstractF1-ATPase (F1) is an ATP-driven rotary motor in which the three catalytic β subunits in the stator ring sequentially induce the unidirectional rotation of the rotary γ subunit. Many lines of evidence have revealed open-to-closed conformational transitions in the β subunit that swing the C-terminal domain inward. This conformational transition causes a C-terminal protruding loop with conserved sequence DELSEED to push the γ subunit. Previous work, where all residues of DELSEED were substituted with glycine to disrupt the specific interaction with γ and introduce conformational flexibility, showed that F1 still rotated, but that the torque was halved, indicating a remarkable impact on torque transmission. In this study, we conducted a...
SummaryF1-ATPase is a rotary molecular motor that proceeds in 120° steps, each driven by ATP hydroly...
AbstractF1-ATPase is a rotary motor protein in which 3 catalytic β-subunits in a stator α3β3 ring un...
AbstractUsing molecular dynamics, we study the unbinding of ATP in F1-ATPase from its tight binding ...
AbstractF1-ATPase is an ATP-driven rotary motor that generates torque at the interface between the c...
AbstractF1-ATPase is an ATP-driven rotary motor that generates torque at the interface between the c...
AbstractF1-ATPase is an ATP-driven rotary molecular motor in which the central γ-subunit rotates ins...
AbstractF1-ATPase is a powerful rotary molecular motor that can rotate an object several hundred tim...
AbstractF1-ATPase is an ATP-driven rotary molecular motor in which the central γ-subunit rotates ins...
AbstractF1-ATPase (F1) is a reversible ATP-driven rotary motor protein. When its rotary shaft is rev...
AbstractATP synthase uses a rotary mechanism to carry out its cellular function of manufacturing ATP...
AbstractF1-ATPase is an ATP-driven rotary molecular motor in which the central γ-subunit rotates ins...
abstract: The FoF1 ATP synthase is a molecular motor critical to the metabolism of virtually all lif...
AbstractF1-ATPase is a water-soluble portion of FoF1-ATP synthase and rotary molecular motor that ex...
AbstractATP synthase (F-ATPase) produces ATP at the expense of ion-motive force or vice versa. It is...
AbstractAnalyzing the direction of F1-ATPase subunit γ rotation, its shape and non-random distributi...
SummaryF1-ATPase is a rotary molecular motor that proceeds in 120° steps, each driven by ATP hydroly...
AbstractF1-ATPase is a rotary motor protein in which 3 catalytic β-subunits in a stator α3β3 ring un...
AbstractUsing molecular dynamics, we study the unbinding of ATP in F1-ATPase from its tight binding ...
AbstractF1-ATPase is an ATP-driven rotary motor that generates torque at the interface between the c...
AbstractF1-ATPase is an ATP-driven rotary motor that generates torque at the interface between the c...
AbstractF1-ATPase is an ATP-driven rotary molecular motor in which the central γ-subunit rotates ins...
AbstractF1-ATPase is a powerful rotary molecular motor that can rotate an object several hundred tim...
AbstractF1-ATPase is an ATP-driven rotary molecular motor in which the central γ-subunit rotates ins...
AbstractF1-ATPase (F1) is a reversible ATP-driven rotary motor protein. When its rotary shaft is rev...
AbstractATP synthase uses a rotary mechanism to carry out its cellular function of manufacturing ATP...
AbstractF1-ATPase is an ATP-driven rotary molecular motor in which the central γ-subunit rotates ins...
abstract: The FoF1 ATP synthase is a molecular motor critical to the metabolism of virtually all lif...
AbstractF1-ATPase is a water-soluble portion of FoF1-ATP synthase and rotary molecular motor that ex...
AbstractATP synthase (F-ATPase) produces ATP at the expense of ion-motive force or vice versa. It is...
AbstractAnalyzing the direction of F1-ATPase subunit γ rotation, its shape and non-random distributi...
SummaryF1-ATPase is a rotary molecular motor that proceeds in 120° steps, each driven by ATP hydroly...
AbstractF1-ATPase is a rotary motor protein in which 3 catalytic β-subunits in a stator α3β3 ring un...
AbstractUsing molecular dynamics, we study the unbinding of ATP in F1-ATPase from its tight binding ...