F1-ATPase catalyses ATP hydrolysis and converts the cellular chemical energy into mechanical rotation. The hydrolysis reaction in F1-ATPase does not follow the widely believed Michaelis-Menten mechanism. Instead, the hydrolysis mechanism behaves in an ATP-dependent manner. We develop a model for enzyme kinetics and hydrolysis cooperativity of F1-ATPase which involves the binding-state changes to the coupling catalytic reactions. The quantitative analysis and modeling suggest the existence of complex cooperative hydrolysis between three different catalysis sites of F1-ATPase. This complexity may be taken into account to resolve the arguments on the bindingchange mechanism in F1-ATPase
Computer-designed artificial enzymes will require precise understanding of how conformation of activ...
Computer-designed artificial enzymes will require precise understanding of how conformation of activ...
F1-ATPase is a unique enzyme. The hydrolysis (or synthesis) of ATP into ADP and Pi produces an energ...
AbstractF1-ATPase is a rotary molecular motor in which the central γ subunit rotates inside a cylind...
AbstractMost of the cellular ATP in living organisms is synthesized by the enzyme F1Fo-ATP synthase....
Kinesin, myosin and F1-ATPase are multi-domain molecular motors with multiple catalytic subunits. Th...
Many essential functions of living cells are performed by nanoscale protein motors. The best charact...
Rotary sequential hydrolysis of the metabolic machine F1-ATPase is a prominent manifestation of high...
AbstractF1-ATPase catalyzes ATP hydrolysis to drive the central γ-shaft rotating inside a hexameric ...
AbstractF1-ATPase (F1), a rotary motor protein driven by ATP hydrolysis, is unique with respect to i...
AbstractMost of the cellular ATP in living organisms is synthesized by the enzyme F1Fo-ATP synthase....
AbstractUsing molecular dynamics, we study the unbinding of ATP in F1-ATPase from its tight binding ...
Oxygen exchange reactions occurring at β-catalytic sites of the FOF1-ATP synthase/F1-ATPase imprint ...
Enzyme F1-ATPase catalyzes the hydrolysis of ATP and converts chemical energy into mechanical rotati...
The rotary motor enzyme FoF1-ATP synthase uses the protonmotive force across a membrane to synthesiz...
Computer-designed artificial enzymes will require precise understanding of how conformation of activ...
Computer-designed artificial enzymes will require precise understanding of how conformation of activ...
F1-ATPase is a unique enzyme. The hydrolysis (or synthesis) of ATP into ADP and Pi produces an energ...
AbstractF1-ATPase is a rotary molecular motor in which the central γ subunit rotates inside a cylind...
AbstractMost of the cellular ATP in living organisms is synthesized by the enzyme F1Fo-ATP synthase....
Kinesin, myosin and F1-ATPase are multi-domain molecular motors with multiple catalytic subunits. Th...
Many essential functions of living cells are performed by nanoscale protein motors. The best charact...
Rotary sequential hydrolysis of the metabolic machine F1-ATPase is a prominent manifestation of high...
AbstractF1-ATPase catalyzes ATP hydrolysis to drive the central γ-shaft rotating inside a hexameric ...
AbstractF1-ATPase (F1), a rotary motor protein driven by ATP hydrolysis, is unique with respect to i...
AbstractMost of the cellular ATP in living organisms is synthesized by the enzyme F1Fo-ATP synthase....
AbstractUsing molecular dynamics, we study the unbinding of ATP in F1-ATPase from its tight binding ...
Oxygen exchange reactions occurring at β-catalytic sites of the FOF1-ATP synthase/F1-ATPase imprint ...
Enzyme F1-ATPase catalyzes the hydrolysis of ATP and converts chemical energy into mechanical rotati...
The rotary motor enzyme FoF1-ATP synthase uses the protonmotive force across a membrane to synthesiz...
Computer-designed artificial enzymes will require precise understanding of how conformation of activ...
Computer-designed artificial enzymes will require precise understanding of how conformation of activ...
F1-ATPase is a unique enzyme. The hydrolysis (or synthesis) of ATP into ADP and Pi produces an energ...