AbstractCryoelectron microscopy studies have identified distinct locations of tropomyosin (Tm) within the Ca2+-free, Ca2+-saturated, and myosin-S1-saturated states of the thin filament. On the other hand, steady-state Förster resonance energy transfer (FRET) studies using functional, reconstituted thin filaments under physiological conditions of temperature and solvent have failed to detect any movement of Tm upon Ca2+ binding. In this investigation, an optimized system for FRET and anisotropy analyses of cardiac tropomyosin (cTm) dynamics was developed that employed a single tethered donor probe within a Tm dimer. Multisite FRET and fluorescence anisotropy analyses showed that S1 binding to Ca2+ thin filaments triggered a uniform displacem...
AbstractTo obtain information on Ca2+-induced tropomyosin (Tm) movement in Ca2+-regulated muscle thi...
To obtain information on Ca2+-induced tropomyosin (Tm) movement in Ca2+-regulated muscle thin filame...
To obtain information on Ca2+-induced tropomyosin (Tm) movement in Ca2+-regulated muscle thin filame...
Cryoelectron microscopy studies have identified distinct locations of tropomyosin (Tm) within the Ca...
AbstractCryoelectron microscopy studies have identified distinct locations of tropomyosin (Tm) withi...
Cryoelectron microscopy studies have identified distinct locations of tropomyosin (Tm) within the Ca...
Cryoelectron microscopy studies have identified distinct locations of tropomyosin (Tm) within the Ca...
A multi-site, steady-state Förster resonance energy transfer (FRET) approach was used to quantify Ca...
A multi-site, steady-state Förster resonance energy transfer (FRET) approach was used to quantify Ca...
A multi-site, steady-state Förster resonance energy transfer (FRET) approach was used to quantify Ca...
A multi-site, steady-state Förster resonance energy transfer (FRET) approach was used to quantify Ca...
A multi-site, steady-state Förster resonance energy transfer (FRET) approach was used to quantify Ca...
A multi-site, steady-state Förster resonance energy transfer (FRET) approach was used to quantify Ca...
A multi-site, steady-state Förster resonance energy transfer (FRET) approach was used to quantify C...
A multi-site, steady-state Förster resonance energy transfer (FRET) approach was used to quantify Ca...
AbstractTo obtain information on Ca2+-induced tropomyosin (Tm) movement in Ca2+-regulated muscle thi...
To obtain information on Ca2+-induced tropomyosin (Tm) movement in Ca2+-regulated muscle thin filame...
To obtain information on Ca2+-induced tropomyosin (Tm) movement in Ca2+-regulated muscle thin filame...
Cryoelectron microscopy studies have identified distinct locations of tropomyosin (Tm) within the Ca...
AbstractCryoelectron microscopy studies have identified distinct locations of tropomyosin (Tm) withi...
Cryoelectron microscopy studies have identified distinct locations of tropomyosin (Tm) within the Ca...
Cryoelectron microscopy studies have identified distinct locations of tropomyosin (Tm) within the Ca...
A multi-site, steady-state Förster resonance energy transfer (FRET) approach was used to quantify Ca...
A multi-site, steady-state Förster resonance energy transfer (FRET) approach was used to quantify Ca...
A multi-site, steady-state Förster resonance energy transfer (FRET) approach was used to quantify Ca...
A multi-site, steady-state Förster resonance energy transfer (FRET) approach was used to quantify Ca...
A multi-site, steady-state Förster resonance energy transfer (FRET) approach was used to quantify Ca...
A multi-site, steady-state Förster resonance energy transfer (FRET) approach was used to quantify Ca...
A multi-site, steady-state Förster resonance energy transfer (FRET) approach was used to quantify C...
A multi-site, steady-state Förster resonance energy transfer (FRET) approach was used to quantify Ca...
AbstractTo obtain information on Ca2+-induced tropomyosin (Tm) movement in Ca2+-regulated muscle thi...
To obtain information on Ca2+-induced tropomyosin (Tm) movement in Ca2+-regulated muscle thin filame...
To obtain information on Ca2+-induced tropomyosin (Tm) movement in Ca2+-regulated muscle thin filame...