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Titlebook: Nature‘s Versatile Engine:; Insect Flight Muscle Jim O. Vigoreaux Book 2006 Springer-Verlag US 2006 Biophysics.Proteomics.X-ray.enzymes.gen

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3D Structure of Myosin Crossbridges in Insect Flight Musclege structures reported by X-ray patterns and by the mechanical behavior of the fibers. Coordinating X-ray diffraction, physiological monitoring and fast freezing with EM tomography, correspondence class averaging and atomic model building in IFM is providing 3D imaging of different myosin conformati
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Comparative Physiology of Insect Flight Muscleby distorting the insect’s thorax (indirect flight muscles). Flight stability and steering are achieved by differential activation of power muscles and by the activity of control muscles that alter wing stroke amplitude and angle of attack. One evolutionary trend seen when comparing more advanced wi
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Novel Myosin Associated Proteinsiochemical, ultrastructural, and mechanical adaptations that define the performance of this muscle type are not completely understood. IFM is characterized by its high stiffness, a property that influences the magnitude of stretch activation and ability to deliver high power to the wings. IFM is als
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Structure of the Insect Thick Filamentsel (= crown). These crowns repeat in periods of 14.5 nm along the longitudinal axis of the filament. The cross-bridges are located at 4 helical tracks with axial spacings of 38.7 nm and a true axial repeat of 116 nm on the surface of the filaments. Twelve myosin subfilaments, arranged in pairs, run
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Troponin, Tropomyosin and GST-2anisms. In muscles, specific family members are associated to the actin based thin filament where they contribute to the sarcomere contraction/relaxation cycle. Different muscles have different regulatory mechanisms; in most muscles, including the vertebrate cardiac and insect flight muscles, regula
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