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PMID: 2086776 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Myofilament spacing and force generation in intact frog muscle fibres.

The Journal of physiology ·Vol. 430 ·1990-11-00 ·Pages 61-75

Bagni MA, Cecchi G, Colomo F

Abstract

1. The relation between sarcomere length and steady tetanic tension was determined at 10-12 degrees C for 70-80 microns long length-clamped segments of single fibres isolated from the tibialis anterior muscle of the frog, in normal and hypertonic or hypotonic Ringer solutions. 2. The tension depression and potentiation observed in hypertonic and hypotonic Ringers solutions varied with sarcomere length, so that, as opposed to myofilament overlap predictions, the optimum length for tension development was shorter in hypertonic Ringer solution and longer in hypotonic Ringer solution than in normal Ringer solution. As the fibres were stretched from 1.96 to 2.24 microns sarcomere length, both tension depression in hypertonic Ringer solution and tension potentiation in hypotonic Ringer solution increased by 9 and 5%, respectively. 3. Within this range of sarcomere lengths the length-stiffness relation in hypotonic and in hypertonic Ringer solutions exhibit little or no change relative to that in normal Ringer solution. 4. The results indicate that separation between the thick and the thin myofilaments influences the mechanism of force generation. There is an optimum interfilament distance (10-12 nm surface to surface between the thick and the thin filaments) for tension production. In isotonic Ringer solution, this corresponds to the interfilament distance at sarcomere lengths around 2.10 microns. The force per attached cross-bridge, rather than their number, appears to decrease as the interfilament distance is brought above or below the optimum length. Even if this effect is moderate in isotonic Ringer solution, it should be taken into account in models of the force-generation mechanism.

MeSH Terms
Actin Cytoskeleton/ultrastructure Animals Biomechanical Phenomena Hypertonic Solutions Hypotonic Solutions In Vitro Techniques Isotonic Solutions/pharmacology Muscle Contraction/drug effects Muscles/physiology Rana esculenta Ringer's Solution Sarcomeres/physiology,ultrastructure
Chemicals
Hypertonic Solutions Hypotonic Solutions Isotonic Solutions Ringer's Solution
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Bagni M A
Dipartimento de Scienze Fisiologiche, Università degli Studi di Firenze, Italy.
Cecchi G
Colomo F
References (46)
46 references, click to expand
  1. The myofilament lattice: studies on isolated fibers. II. The effects of osmotic strength, ionic concentration, and pH upon the unit-cell volume.
    J Cell Biol. 1972 Apr;53(1):53-65 PMID: 5013602
  2. Tension responses to sudden length change in stimulated frog muscle fibres near slack length.
    J Physiol. 1977 Jul;269(2):441-515 PMID: 302333
  3. The relation between stiffness and filament overlap in stimulated frog muscle fibres.
    J Physiol. 1981 Feb;311:219-49 PMID: 6973625
  4. The effects of tonicity on tension and stiffness of tetanized skeletal muscle fibres of the frog.
    Acta Physiol Scand. 1989 Jun;136(2):205-16 PMID: 2789465
  5. Muscle contraction: the effect of ionic strength.
    Nature. 1968 Oct 12;220(5163):182-4 PMID: 5684834
  6. The variation in isometric tension with sarcomere length in vertebrate muscle fibres.
    J Physiol. 1966 May;184(1):170-92 PMID: 5921536
  7. Low-angle x-ray diffraction studies of living striated muscle during contraction.
    J Mol Biol. 1967 Apr 14;25(1):31-45 PMID: 6034095
  8. THE OSMOTIC PROPERTIES OF STRIATED MUSCLE FIBERS IN HYPERTONIC SOLUTIONS.
    J Physiol. 1963 Nov;169:312-29 PMID: 14079669
  9. Ionic strength and the contraction kinetics of skinned muscle fibers.
    J Gen Physiol. 1974 Apr;63(4):509-30 PMID: 4544880
  10. The behaviour of frog muscle in hypertonic solutions.
    J Physiol. 1958 Nov 10;144(1):167-75 PMID: 13599116
  11. Electron microscope studies of the organisation of the filaments in striated muscle.
    Biochim Biophys Acta. 1953 Nov;12(3):387-94 PMID: 13115446
  12. Tonicity effects on intact single muscle fibers: relation between force and cell volume.
    Science. 1982 Feb 26;215(4536):1109-12 PMID: 6977845
  13. Sliding filament model of muscular contraction. V. Isometric force and interfilament spacing.
    J Theor Biol. 1970 Dec;29(3):395-410 PMID: 5492994
  14. Swelling of skinned muscle fibers of the frog. Experimental observations.
    Biophys J. 1977 Aug;19(2):103-16 PMID: 18220
  15. The variation in active tension with sarcomere length in vertebrate skeletal muscle and its relation to fibre width.
    Experientia. 1968 Feb 15;24(2):134-6 PMID: 5643800
  16. The maximum length for contraction in vertebrate straiated muscle.
    J Physiol. 1961 Apr;156:150-65 PMID: 13717107
  17. Tension transients during steady shortening of frog muscle fibres.
    J Physiol. 1985 Apr;361:131-50 PMID: 3872938
  18. The mechanisms of force enhancement during constant velocity lengthening in tetanized single fibres of frog muscle.
    Adv Exp Med Biol. 1988;226:489-502 PMID: 3261491
  19. Inhibition of force production in compressed skinned muscle fibers of the frog.
    Pflugers Arch. 1981 May;390(2):161-3 PMID: 6972521
  20. Effects of hyperosmotic solutions on the filament lattice of intact frog skeletal muscle.
    Biophys J. 1981 Feb;33(2):189-202 PMID: 6971658
  21. Secretion of protein from salivary glands in the ferret in response to vasoactive intestinal peptide.
    J Physiol. 1989 Aug;415:131-41 PMID: 2484205
  22. Tension in skinned frog muscle fibers in solutions of varying ionic strength and neutral salt composition.
    J Gen Physiol. 1973 Nov;62(5):550-74 PMID: 4543066
  23. Active force as a function of filament spacing in crayfish skinned muscle fibers.
    Pflugers Arch. 1986 Oct;407(4):456-60 PMID: 3774512
  24. Influence of osmotic compression on calcium activation and tension in skinned muscle fibers of the rabbit.
    Pflugers Arch. 1981 Oct;391(4):334-7 PMID: 7312568
  25. The myofilament lattice: studies on isolated fibers. 3. The effect of myofilament spacing upon tension.
    J Gen Physiol. 1973 Apr;61(4):490-508 PMID: 4694743
  26. X-ray diffraction from living striated muscle during contraction.
    Nature. 1965 Jun 26;206(991):1357-8 PMID: 5838247
  27. Osmotic pressure variations used to elicit oscillations and changes in stiffness of muscle fibers.
    Physiol Chem Phys. 1975;7(1):31-8 PMID: 1129376
  28. Volume and twitch tension changes in single muscle fibers in hypertonic solutions.
    J Gen Physiol. 1968 Nov;52(5):793-809 PMID: 5688084
  29. Tension, stiffness, unloaded shortening speed and potentiation of frog muscle fibres at sarcomere lengths below optimum.
    J Physiol. 1981;319:205-17 PMID: 6976430
  30. Variations of the contractile apparatus in smooth and striated muscles. X-ray diffraction studies at rest and in contraction.
    J Gen Physiol. 1967 Jul;50(6):Suppl:171-84 PMID: 6050595
  31. Plateau and descending limb of the sarcomere length-tension relation in short length-clamped segments of frog muscle fibres.
    J Physiol. 1988 Jul;401:581-95 PMID: 3262740
  32. Geometrical factors influencing muscle force development. I. The effect of filament spacing upon axial forces.
    Biophys J. 1980 Apr;30(1):51-67 PMID: 6894872
  33. Some effects of hypertonic solutions on contraction and excitation-contraction coupling in frog skeletal muscles.
    J Gen Physiol. 1970 Feb;55(2):254-75 PMID: 5415044
  34. The stiffness of frog skinned muscle fibres at altered lateral filament spacing.
    J Physiol. 1986 Sep;378:175-94 PMID: 3491904
  35. Lateral filamentary spacing in frog skinned muscle fibres in the relaxed and rigor states [proceedings].
    J Physiol. 1979 Oct;295:80P-81P PMID: 521993
  36. The relationship between myofilament packing density and sarcomere length in frog striated muscle.
    J Cell Biol. 1967 May 1;33(2):255-63 PMID: 19866708
  37. Shortening velocity in skinned single muscle fibers. Influence of filament lattice spacing.
    Biophys J. 1987 Jul;52(1):127-31 PMID: 3607220
  38. The myofilament lattice: studies on isolated fibers. I. The constancy of the unit-cell volume with variation in sarcomere length in a lattice in which the thin-to-thick myofilament ratio is 6:1.
    J Cell Biol. 1971 Oct;51(1):72-82 PMID: 5111882
  39. Hydration effects on muscle response.
    Physiol Chem Phys Med NMR. 1985;17(1):131-4 PMID: 3929281
  40. A diffractometer using a lateral effect photodiode for the rapid determination of sarcomere length changes in cross-striated muscle.
    Pflugers Arch. 1978 Apr 25;374(1):97-100 PMID: 355999
  41. X-ray diffraction studies on skinned single fibres of frog skeletal muscle.
    J Mol Biol. 1972 Dec 30;72(3):657-69 PMID: 4540801
  42. Redistribution of sarcomere length during isometric contraction of frog muscle fibres and its relation to tension creep.
    J Physiol. 1984 Jun;351:169-98 PMID: 6611407
  43. A circuit specially suited for use with high-frequency capacitance gauge force transducers.
    Arch Ital Biol. 1983 Aug;121(3):215-7 PMID: 6667083
  44. Stiffness of frog muscle fibres during rise of tension and relaxation in fixed-end or length-clamped tetani.
    Pflugers Arch. 1987 Jun;409(1-2):39-46 PMID: 3497383
  45. The mechanics of active muscle.
    Proc R Soc Lond B Biol Sci. 1953 Mar 11;141(902):104-17 PMID: 13047276
  46. A loudspeaker servo system for determination of mechanical characteristics of isolated muscle fibres.
    Boll Soc Ital Biol Sper. 1976 MAY 30;52(10):733-6 PMID: 949387
Article Info
Journal
The Journal of physiology
Abbr.
J Physiol
ISSN
0022-3751
Published
1990-11-00
Pages
61-75
Language
English
Region
England
NLM ID
0266262
PMCID
PMC1181727
Subset
IM
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