The history dependence of force production in mammalian skeletal muscle following stretch-shortening and shortening-stretch cycles

被引:125
|
作者
Herzog, W [1 ]
Leonard, TR [1 ]
机构
[1] Univ Calgary, Fac Kinesiol, Calgary, AB T2N 1N4, Canada
关键词
muscle properties; force depression; force enhancement; mechanisms of contraction;
D O I
10.1016/S0021-9290(99)00221-3
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
The purpose of this study It as to determine the history dependence of force production during and following stretch-shortening and shortening-stretch cycles in mammalian skeletal muscle. Thirty-three different isometric, stretch, shortening, stretch-shortening and shortening-stretch experiments were preformed in cat soleus (n = 8) using previously established methods. Stretch-shortening and shortening-stretch cycles are not commutative with respect to the isometric forces following the length changes. Whereas force depression following shortening is virtually unaffected by previous stretching of the muscle. force enhancement following stretch depends in a dose-dependent manner on the amount of muscle shortening preceding the stretch. The history dependence of isometric force following shortening-stretch cycles can conveniently be modelled using an elastic (compressive and tensile) element that engages at the length of muscle activation. Such an "elastic" mechanism has been proposed by Edman and Tsuchiya (1996) (Edman, K.A.P., Tsuchiya, T., 1996. Strain of passive elements during Force enhancement by stretch in frog muscle fibres. Journal of Physiology 490.1, 191-205) based on experimental observations, and has been implemented theoretically in a rheological model of muscle (Forcinito et al., 1997) (Forcinito, hi., Epstein, M., Herzog, W., 1997. Theoretical considerations on myofibril stiffness. Biophysics Journal 72, 1278-1286. The history dependence of isometric force following stretch-shortening cycles appears independent of the stretch preceding the shortening, except perhaps, if stretching occurs at very high speeds (i.e. 6-10 times fibre length per second). The results of this study are hard to reconcile with the two major mechanisms associated with history dependence of force production: sarcomere length non-uniformity (Edman et al., 1993) and stress-induced cross-bridge inhibition (Marechal and Plaghki, 1979) (Marechal, G., Plaghki, L., 1979. The deficit of the isometric tetanic tension redeveloped after a release of frog muscle at a constant velocity. Journal of General Physiology 73, 453-467). It appears that studying the history dependence of force production under more functionally relevant conditions than has been done to date may provide new information that contributes to our understanding of possible mechanisms associated with force depression and force enhancement following muscular length changes, (C) 2000 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:531 / 542
页数:12
相关论文
共 50 条
  • [21] Contribution of the Achilles tendon to force potentiation in a stretch-shortening cycle
    Fukutani, Atsuki
    Sawatsky, Andrew
    Leonard, Timothy
    Herzog, Walter
    JOURNAL OF EXPERIMENTAL BIOLOGY, 2019, 222 (14):
  • [22] Muscle efficiency: the controversial role of elasticity and mechanical energy conversion in stretch-shortening cycles
    Ettema, GJC
    EUROPEAN JOURNAL OF APPLIED PHYSIOLOGY, 2001, 85 (05) : 457 - 465
  • [23] Force depression following a stretch-shortening cycle depends on the amount of residual force enhancement established in the initial stretch phase
    Fortuna, Rafael
    Goecking, Tobias
    Seiberl, Wolfgang
    Herzog, Walter
    PHYSIOLOGICAL REPORTS, 2019, 7 (16):
  • [24] Skeletal Muscle Morphology Following Chronic Stretch-Shortening Contraction Exposure: Effects of Glutathione Depletion and Age
    Baker, Brent A.
    Hollander, Melinda S.
    Kashon, Michael L.
    Cutlip, Robert G.
    MEDICINE AND SCIENCE IN SPORTS AND EXERCISE, 2008, 40 (05): : S110 - S110
  • [25] Enhancement of Skeletal Muscle in Aged Rats Following High-Intensity Stretch-Shortening Contraction Training
    Rader, Erik P.
    Naimo, Marshall A.
    Layner, Kayla N.
    Triscuit, Alyssa M.
    Chetlin, Robert D.
    Ensey, James
    Baker, Brent A.
    REJUVENATION RESEARCH, 2017, 20 (02) : 93 - 102
  • [26] The stretch-shortening cycle effect is prominent in the inhibited force state
    Fukutani, Atsuki
    Herzog, Walter
    JOURNAL OF BIOMECHANICS, 2021, 115 (115)
  • [27] Muscle efficiency: the controversial role of elasticity and mechanical energy conversion in stretch-shortening cycles
    G. Ettema
    European Journal of Applied Physiology, 2001, 85 : 457 - 465
  • [28] Factors of Force Potentiation Induced by Stretch-Shortening Cycle in Plantarflexors
    Fukutani, Atsuki
    Kurihara, Toshiyuki
    Isaka, Tadao
    PLOS ONE, 2015, 10 (06):
  • [29] Effects of glutathione depletion and age on skeletal muscle performance and morphology following chronic stretch-shortening contraction exposure
    Baker, Brent A.
    Hollander, Melinda S.
    Kashon, Michael L.
    Cutlip, Robert G.
    EUROPEAN JOURNAL OF APPLIED PHYSIOLOGY, 2010, 108 (03) : 619 - 630
  • [30] Energy Cost of Force Production After a Stretch-Shortening Cycle in Skinned Muscle Fibers: Does Muscle Efficiency Increase?
    Joumaa, Venus
    Fukutani, Atsuki
    Herzog, Walter
    FRONTIERS IN PHYSIOLOGY, 2021, 11