AbstractMuscle contraction is regulated by troponin-tropomyosin, which blocks and unblocks myosin binding sites on actin. To elucidate this regulatory mechanism, the three-dimensional organization of troponin and tropomyosin on the thin filament must be determined. Although tropomyosin is well defined in electron microscopy helical reconstructions of thin filaments, troponin density is mostly lost. Here, we determined troponin organization on native relaxed cardiac muscle thin filaments by applying single particle reconstruction procedures to negatively stained specimens. Multiple reference models led to the same final structure, indicating absence of model bias in the procedure. The new reconstructions clearly showed F-actin, tropomyosin, ...
The movement of tropomyosin from actin\u27s outer to its inner domain plays a key role in sterically...
Contraction of skeletal and cardiac muscle is controlled by Ca2+ ions via regulatory proteins, tropo...
AbstractHeart muscle is activated by Ca2+ to generate force and shortening, and the signaling pathwa...
Muscle contraction is regulated by troponin-tropomyosin, which blocks and unblocks myosin binding si...
AbstractMuscle contraction is regulated by troponin-tropomyosin, which blocks and unblocks myosin bi...
Contraction of striated muscles is regulated by tropomyosin strands that run continuously along acti...
Contraction of skeletal and cardiac muscles is regulated by Ca2+ binding to troponin in the actin-co...
The regulation of striated muscle contraction involves changes in the interactions of troponin and t...
The regulation of striated muscle contraction involves changes in the interactions of troponin and t...
The regulation of striated muscle contraction involves changes in the interactions of troponin and t...
The molecular switching mechanism governing skeletal and cardiac muscle contraction couples the bind...
The structures of muscle thin filaments reconstituted using skeletal actin and cardiac troponin and ...
The regulation of striated muscle contraction involves changes in the interactions of troponin and t...
The molecular regulation of striated muscle contraction couples the binding and dissociation of Ca(2...
AbstractPast attempts to detect tropomyosin in electron micrograph images of frozen-hydrated troponi...
The movement of tropomyosin from actin\u27s outer to its inner domain plays a key role in sterically...
Contraction of skeletal and cardiac muscle is controlled by Ca2+ ions via regulatory proteins, tropo...
AbstractHeart muscle is activated by Ca2+ to generate force and shortening, and the signaling pathwa...
Muscle contraction is regulated by troponin-tropomyosin, which blocks and unblocks myosin binding si...
AbstractMuscle contraction is regulated by troponin-tropomyosin, which blocks and unblocks myosin bi...
Contraction of striated muscles is regulated by tropomyosin strands that run continuously along acti...
Contraction of skeletal and cardiac muscles is regulated by Ca2+ binding to troponin in the actin-co...
The regulation of striated muscle contraction involves changes in the interactions of troponin and t...
The regulation of striated muscle contraction involves changes in the interactions of troponin and t...
The regulation of striated muscle contraction involves changes in the interactions of troponin and t...
The molecular switching mechanism governing skeletal and cardiac muscle contraction couples the bind...
The structures of muscle thin filaments reconstituted using skeletal actin and cardiac troponin and ...
The regulation of striated muscle contraction involves changes in the interactions of troponin and t...
The molecular regulation of striated muscle contraction couples the binding and dissociation of Ca(2...
AbstractPast attempts to detect tropomyosin in electron micrograph images of frozen-hydrated troponi...
The movement of tropomyosin from actin\u27s outer to its inner domain plays a key role in sterically...
Contraction of skeletal and cardiac muscle is controlled by Ca2+ ions via regulatory proteins, tropo...
AbstractHeart muscle is activated by Ca2+ to generate force and shortening, and the signaling pathwa...