AbstractThe mechanical load borne by a molecular motor affects its force, sliding distance, and its rate of energy transduction. The control of ATPase activity by the mechanical load on a muscle tunes its efficiency to the immediate task, increasing ATP hydrolysis as the power output increases at forces less than isometric (the Fenn effect) and suppressing ATP hydrolysis when the force is greater than isometric. In this work, we used a novel ‘isometric’ optical clamp to study the mechanics of myosin II molecules to detect the reaction steps that depend on the dynamic properties of the load. An actin filament suspended between two beads and held in separate optical traps is brought close to a surface that is sparsely coated with motor protei...
AbstractThe myosin motor protein generates force in muscle by hydrolyzing Adenosine 5′-triphosphate ...
AbstractThe ATP hydrolysis rate and shortening velocity of muscle are load-dependent. At the molecul...
AbstractWe have developed a technique that allows mechanical and ligand-binding events in a single m...
AbstractThe mechanical load borne by a molecular motor affects its force, sliding distance, and its ...
Skeletal muscle uses more energy when it is shortening rapidly and less energy when it is maintainin...
Skeletal muscle uses more energy when it is shortening rapidly and less energy when it is maintainin...
AbstractWe have developed a technique that allows mechanical and ligand-binding events in a single m...
We have developed a new technique for measurements of piconewton forces and nanometer displacements ...
AbstractTo better understand how skeletal muscle myosin molecules move actin filaments, we determine...
AbstractLoad dependence of the lifetime of the rigor bonds formed between a single myosin molecule (...
AbstractMuscle contraction is brought about by the cyclical interaction of myosin with actin coupled...
Muscle contraction is produced by the interaction between myosin and actin. In this thesis, we devel...
AbstractTo characterize elastic properties and geometrical parameters of individual, whole myosin mo...
The contraction of striated muscle (skeletal and cardiac muscle) is generated by ATP-dependent inter...
AbstractSkeletal muscle’s ability to shorten and lengthen against a load is a fundamental property, ...
AbstractThe myosin motor protein generates force in muscle by hydrolyzing Adenosine 5′-triphosphate ...
AbstractThe ATP hydrolysis rate and shortening velocity of muscle are load-dependent. At the molecul...
AbstractWe have developed a technique that allows mechanical and ligand-binding events in a single m...
AbstractThe mechanical load borne by a molecular motor affects its force, sliding distance, and its ...
Skeletal muscle uses more energy when it is shortening rapidly and less energy when it is maintainin...
Skeletal muscle uses more energy when it is shortening rapidly and less energy when it is maintainin...
AbstractWe have developed a technique that allows mechanical and ligand-binding events in a single m...
We have developed a new technique for measurements of piconewton forces and nanometer displacements ...
AbstractTo better understand how skeletal muscle myosin molecules move actin filaments, we determine...
AbstractLoad dependence of the lifetime of the rigor bonds formed between a single myosin molecule (...
AbstractMuscle contraction is brought about by the cyclical interaction of myosin with actin coupled...
Muscle contraction is produced by the interaction between myosin and actin. In this thesis, we devel...
AbstractTo characterize elastic properties and geometrical parameters of individual, whole myosin mo...
The contraction of striated muscle (skeletal and cardiac muscle) is generated by ATP-dependent inter...
AbstractSkeletal muscle’s ability to shorten and lengthen against a load is a fundamental property, ...
AbstractThe myosin motor protein generates force in muscle by hydrolyzing Adenosine 5′-triphosphate ...
AbstractThe ATP hydrolysis rate and shortening velocity of muscle are load-dependent. At the molecul...
AbstractWe have developed a technique that allows mechanical and ligand-binding events in a single m...