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PMID: 7171708 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Velocity transients and viscoelastic resistance to active shortening in cat papillary muscle.

Biophysical journal ·Vol. 40 ·No. 2 ·1982-11-00 ·Pages 121-8

Chiu YL, Ballou EW, Ford LE

Abstract

When isotonic force steps were applied to activated papillary muscles, the velocity was almost never constant. Early rapid shortening associated with the step persisted for 2-7 ms after the step ends. The early rapid shortening is attributed to lightly damped series elastic recoil and velocity transients of the contractile elements. In most steps, the subsequent velocity declines progressively with shortening, and most of the decline in velocity can be accounted for by compression of a viscoelastic element in parallel with the contractile elements. To demonstrate this, the time course of isotonic velocity was compared with a model in which the force-velocity characteristics of the contractile element were assumed to be constant, and the decline in velocity was due to increasing compression of the viscoelastic element. This model predicted the observed results except that the predicted velocities rose progressively above the measured values for steps to light loads applied late in the twitch, and fell below the velocity trace for heavy loads applied early in the twitch. These deviations would occur if rapid shortening caused deactivation late in the twitch, and if activation were rising early in the twitch. A conditioning step applied to the muscle during the rise of force depressed both isometric force and maximum velocity measured at the peak of force; isometric force was more depressed with later conditioning steps than with earlier steps, while maximum velocity was depressed by about the same extent with both early and late steps. This difference between the effects on isometric force and maximum velocity are explained by a combination of deactivation and viscoelastic load.

MeSH Terms
Animals Cats Elasticity Heart/physiology Mathematics Myocardial Contraction Papillary Muscles/physiology Viscosity
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Chiu Y L
Ballou E W
Ford L E
References (19)
19 references, click to expand
  1. Active state in heart muscle. Its delayed onset and modification by inotropic agents.
    J Gen Physiol. 1967 Jan;50(3):661-76 PMID: 11526852
  2. Determinants of active state in heart muscle: force, velocity, instantaneous muscle length, time.
    Fed Proc. 1965 Nov-Dec;24(6):1396-409 PMID: 5853157
  3. Time and displacement dependence of cardiac contractility: problems in defining the active state and force-velocity relations.
    Fed Proc. 1965 Nov-Dec;24(6):1410-20 PMID: 5853158
  4. Contraction kinetics of striated muscle fibres following quick changes in load.
    J Physiol. 1966 Jun;184(3):511-34 PMID: 5963731
  5. Onset of contractility in cardiac muscle.
    J Physiol. 1966 Jun;184(3):560-80 PMID: 5963733
  6. Elastic components of cat papillary muscle.
    Am J Physiol. 1967 May;212(5):1221-7 PMID: 6023880
  7. The mechanical parameters of myocardial contraction studied at a constant length of the contractile element.
    Acta Physiol Scand. 1968 Jan-Feb;72(1):205-19 PMID: 5655754
  8. Drugs and the mechanical properties of heart muscle.
    Annu Rev Pharmacol. 1968;8:113-30 PMID: 4953090
  9. Force-velocity-length-time relations of the contractile elements in heart muscle of the cat.
    Circ Res. 1969 Feb;24(2):137-49 PMID: 5764578
  10. Force-velocity relationship of cat cardiac muscle, studied by isotonic and quick-release techniques.
    Circ Res. 1969 Jun;24(6):821-33 PMID: 5786788
  11. Maximum velocity as an index of contractility in cardiac muscle. A critical evaluation.
    Circ Res. 1970 Jan;26(1):111-27 PMID: 5410091
  12. Effects of abrupt load alterations on force-velocity-length and time relations during isotonic contractions of heart muscle: load clamping.
    J Physiol. 1971 Jul;216(2):319-30 PMID: 5559625
  13. Proposed mechanism of force generation in striated muscle.
    Nature. 1971 Oct 22;233(5321):533-8 PMID: 4939977
  14. Length-force relation of calcium activated muscle fibers.
    Science. 1972 Apr 7;176(4030):52-4 PMID: 5061575
  15. The effect of shortening on the time-course of active state decay.
    J Gen Physiol. 1972 Aug;60(2):202-20 PMID: 4538059
  16. Relationships between force and velocity of shortening in rabbit papillary muscle.
    Acta Physiol Scand. 1972 Aug;85(4):488-500 PMID: 5074161
  17. Deactivation of contraction by quick releases in the isolated papillary muscle of the cat. Effects of lever damping, caffeine, and tetanization.
    Circ Res. 1974 Feb;34(2):214-25 PMID: 4811075
  18. The relation between stiffness and filament overlap in stimulated frog muscle fibres.
    J Physiol. 1981 Feb;311:219-49 PMID: 6973625
  19. Kinetics of muscular contraction: the approach to the steady state.
    Nature. 1960 Nov 19;188:666-8 PMID: 13736493
Article Info
Journal
Biophysical journal
Abbr.
Biophys J
ISSN
0006-3495
Published
1982-11-00
Pages
121-8
Language
English
Region
United States
NLM ID
0370626
PMCID
PMC1328984
Subset
IM
Grants
NHLBI NIH HHS · HL-20592 · United States
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