Literature DB >> 9288682

The biphasic force-velocity relationship in frog muscle fibres and its evaluation in terms of cross-bridge function.

K A Edman1, A Månsson, C Caputo.   

Abstract

1. The relationship between force and velocity of shortening was studied during fused tetani of single fibres isolated from the anterior tibialis muscle of Rana temporaria (1.5-3.3 degrees C; sarcomere length, 2.20 microns). Stiffness was measured as the change in force that occurred in response to a 4 kHz length oscillation of the fibre. 2. The results confirmed the existence of two distinct curvatures of the force-velocity relationship located on either side of a breakpoint in the high-force, low-velocity range. Reduction of the isometric force (P0) to 83.4 +/- 1.7% (mean +/- S.E.M., n = 5) of the control value by dantrolene did not affect the relative shape of the force-velocity relationship. The breakpoint between the two curvatures was located at 75.9 +/- 0.9% of P0 and 11.4 +/- 0.6% of maximum velocity of shortening (Vmax) in control Ringer solution and at 75.6 +/- 0.7% of P0 and 12.2 +/- 0.7% of Vmax in the presence of dantrolene. These results provide evidence that the transition between the two curvatures of the force-velocity relationship is primarily related to the speed of shortening, not to the actual force within the fibre. 3. The instantaneous stiffness varied with the speed of shortening forming a biphasic relationship with a breakpoint near 0.15 Vmax and 0.8 P0, respectively. The force/stiffness ratio (probably reflecting the average force per cross-bridge), increased with force during shortening. The increase of the force/stiffness ratio with force was less steep at forces exceeding 0.8 P0 than below this point. 4. A four-state cross-bridge model (described in the Appendix) was used to evaluate the experimental results. The model reproduces with great precision the characteristic features of the force-stiffness-velocity relationships recorded in intact muscle fibres.

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Year:  1997        PMID: 9288682      PMCID: PMC1159894          DOI: 10.1111/j.1469-7793.1997.141bi.x

Source DB:  PubMed          Journal:  J Physiol        ISSN: 0022-3751            Impact factor:   5.182


  37 in total

1.  Non-hyperbolic force-velocity relationship in single muscle fibres.

Authors:  K A Edman; L A Mulieri; B Scubon-Mulieri
Journal:  Acta Physiol Scand       Date:  1976-10

2.  Tension and stiffness of frog muscle fibres at full filament overlap.

Authors:  M A Bagni; G Cecchi; F Colomo; C Poggesi
Journal:  J Muscle Res Cell Motil       Date:  1990-10       Impact factor: 2.698

3.  Muscular force at different speeds of shortening.

Authors:  W O Fenn; B S Marsh
Journal:  J Physiol       Date:  1935-11-22       Impact factor: 5.182

4.  Tension responses to sudden length change in stimulated frog muscle fibres near slack length.

Authors:  L E Ford; A F Huxley; R M Simmons
Journal:  J Physiol       Date:  1977-07       Impact factor: 5.182

5.  Double-hyperbolic force-velocity relation in frog muscle fibres.

Authors:  K A Edman
Journal:  J Physiol       Date:  1988-10       Impact factor: 5.182

Review 6.  Theoretical formalism for the sliding filament model of contraction of striated muscle. Part I.

Authors:  T L Hill
Journal:  Prog Biophys Mol Biol       Date:  1974       Impact factor: 3.667

7.  The velocity of unloaded shortening and its relation to sarcomere length and isometric force in vertebrate muscle fibres.

Authors:  K A Edman
Journal:  J Physiol       Date:  1979-06       Impact factor: 5.182

8.  Sliding distance of actin filament induced by a myosin crossbridge during one ATP hydrolysis cycle.

Authors:  T Yanagida; T Arata; F Oosawa
Journal:  Nature       Date:  1985 Jul 25-31       Impact factor: 49.962

9.  Force-velocity relation for frog muscle fibres: effects of moderate fatigue and of intracellular acidification.

Authors:  N A Curtin; K A Edman
Journal:  J Physiol       Date:  1994-03-15       Impact factor: 5.182

10.  Inhibition of the intracellular release of calcium by Dantrolene in barnacle giant muscle fibres.

Authors:  J E Desmedt; K Hainaut
Journal:  J Physiol       Date:  1977-02       Impact factor: 5.182

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  26 in total

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Authors:  T A Duke
Journal:  Proc Natl Acad Sci U S A       Date:  1999-03-16       Impact factor: 11.205

2.  Synchronous oscillations of length and stiffness during loaded shortening of frog muscle fibres.

Authors:  K A Edman; N A Curtin
Journal:  J Physiol       Date:  2001-07-15       Impact factor: 5.182

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4.  Variation in the determinants of power of chemically skinned type I rat soleus muscle fibres.

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5.  Half-sarcomere dynamics in myofibrils during activation and relaxation studied by tracking fluorescent markers.

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6.  Filament compliance effects can explain tension overshoots during force development.

Authors:  Kenneth S Campbell
Journal:  Biophys J       Date:  2006-09-01       Impact factor: 4.033

7.  Mathematical simulation of muscle cross-bridge cycle and force-velocity relationship.

Authors:  Leslie Chin; Pengtao Yue; James J Feng; Chun Y Seow
Journal:  Biophys J       Date:  2006-08-25       Impact factor: 4.033

8.  Kinetics of force recovery following length changes in active skinned single fibres from rabbit psoas muscle: analysis and modelling of the late recovery phase.

Authors:  Kevin Burton; Robert M Simmons; John Sleep; Robert M Simmons; Kevin Burton; David A Smith
Journal:  J Physiol       Date:  2006-02-23       Impact factor: 5.182

9.  A cross-bridge cycle with two tension-generating steps simulates skeletal muscle mechanics.

Authors:  Gerald Offer; K W Ranatunga
Journal:  Biophys J       Date:  2013-08-20       Impact factor: 4.033

10.  Nonlinear cross-bridge elasticity and post-power-stroke events in fast skeletal muscle actomyosin.

Authors:  Malin Persson; Elina Bengtsson; Lasse ten Siethoff; Alf Månsson
Journal:  Biophys J       Date:  2013-10-15       Impact factor: 4.033

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