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The regulation of the calcium sensitivity of the contractile system in mammalian cardiac muscle.
J Gen Physiol. 1978 Dec;72(6):737-64
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Cross-bridge properties derived from muscle isotonic velocity transients.
Proc Natl Acad Sci U S A. 1969 Oct;64(2):504-11
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The variation in isometric tension with sarcomere length in vertebrate muscle fibres.
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Ionic strength and the contraction kinetics of skinned muscle fibers.
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An analysis of the mechanical components in frog's striated muscle.
J Physiol. 1958 Oct 31;143(3):515-40
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The phosphorylated L2 light chain of skeletal myosin is a modifier of the actomyosin ATPase.
J Biol Chem. 1980 Sep 25;255(18):8836-41
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Force-velocity relation in deuterium oxide-treated frog single muscle fibres during the rise of tension in an isometric tetanus.
J Physiol. 1981 Aug;317:207-21
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Non-hyperbolic force-velocity relationship in single muscle fibres.
Acta Physiol Scand. 1976 Oct;98(2):143-56
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The velocity of unloaded shortening and its relation to sarcomere length and isometric force in vertebrate muscle fibres.
J Physiol. 1979 Jun;291:143-59
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Phosphorylation of myosin light chains in mouse fast-twitch muscle associated with reduced actomyosin turnover rate.
Science. 1982 Aug 27;217(4562):835-7
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The mechanical properties of relaxing muscle.
J Physiol. 1960 Jun;152:30-47
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Phosphorylation-dephosphorylation of the 18,000-dalton light chain of myosin during the contraction-relaxation cycle of frog muscle.
J Biol Chem. 1979 May 10;254(9):3617-23
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Force measurements in skinned muscle fibres.
J Physiol. 1969 Feb;200(3):807-19
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The effects of muscle length on intracellular calcium transients in mammalian cardiac muscle.
J Physiol. 1982 Jun;327:79-94
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A phosphorylated light-chain component of myosin from skeletal muscle.
Biochem J. 1973 Sep;135(1):151-64
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Muscle structure and theories of contraction.
Prog Biophys Biophys Chem. 1957;7:255-318
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The relation between force and speed in muscular contraction.
J Physiol. 1939 Jun 14;96(1):45-64
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The effect of calcium on the force-velocity relation of briefly glycerinated frog muscle fibres.
J Physiol. 1971 Oct;218(1):117-45
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Isotonic contraction of skinned muscle fibers on a slow time base: effects of ionic strength and calcium.
J Gen Physiol. 1981 Sep;78(3):233-57
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The effect of calcium on the maximum velocity of shortening in skinned skeletal muscle fibres of the rabbit.
J Muscle Res Cell Motil. 1982 Sep;3(3):295-311
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Effect of calcium on force-velocity characteristics of glycerinated skeletal muscle.
Am J Physiol. 1971 Oct;221(4):973-9
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The relation between calcium and contraction kinetics in skinned muscle fibres.
J Physiol. 1970 Nov;211(1):19-35
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Force-velocity relation in normal and nitrate-treated frog single muscle fibres during rise of tension in an isometric tetanus.
J Physiol. 1978 Dec;285:257-73
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Effects of calcium and ionic strength on shortening velocity and tension development in frog skinned muscle fibres.
J Physiol. 1981 Feb;311:179-99
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The effect of shortening on the time-course of active state decay.
J Gen Physiol. 1972 Aug;60(2):202-20
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Effect of muscle length on the force-velocity relationship of tetanized cardiac muscle.
Circ Res. 1972 Aug;31(2):195-206
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The time course of the active state in relation to sarcomere length and movement studied in single skeletal muscle fibres of the frog.
Acta Physiol Scand. 1971 Feb;81(2):182-96
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Cooperation within actin filament in vertebrate skeletal muscle.
Nat New Biol. 1972 Jul 26;238(82):97-101
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Calcium-activated tension of skinned muscle fibers of the frog. Dependence on magnesium adenosine triphosphate concentration.
J Gen Physiol. 1974 Jun;63(6):722-39
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Sarcomere length-tension relations of frog skinned muscle fibres during calcium activation at short lengths.
J Physiol. 1979 Jul;292:177-92
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