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Published in: European Journal of Applied Physiology 7/2011

01-07-2011 | Original Article

The effect of muscle length on force depression after active shortening in soleus muscle of mice

Authors: Pieter Van Noten, Marc Van Leemputte

Published in: European Journal of Applied Physiology | Issue 7/2011

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Abstract

Isometric muscle force after active shortening is reduced [force depression (FD)]. The mechanism is incompletely understood but work delivered during shortening has been suggested to be the main determinant of FD. However, whether muscle length affects the sensitivity of FD to work is unknown, although this information might add to the understanding of the phenomenon. The aim of this study is to investigate the length dependence of the FD/work ratio (Q). Therefore, isometric force production (ISO) of 10 incubated mouse soleus muscles was compared to isometric force after 0.6, 1.2, and 2.4 mm shortening (IAS) at different end lengths ranging from L 0 − 3  to L 0 + 1.8 mm in steps of 0.6 mm. FD was calculated as the force difference between an ISO and IAS contraction at the same activation time (6 s) and end length. We confirm the strong relation between FD and work at L 0 (R ² = 0.92) and found that FD is length dependent with a maximum of 8.8 ± 0.3% at L 0 + 1.2 mm for 0.6 mm shortening amplitude. Q was only constant for short muscle lengths (<85% L 0) but increased exponentially with increasing muscle length. The observed length dependence of Q indicates that FD is not only determined by work produced during shortening but also by a length-dependent factor, possibly actin compliance, which should be incorporated in any mechanism explaining FD.
Literature
go back to reference Abbott BC, Aubert XM (1952) The force exerted by active striated muscle during and after change of length. J Physiol 117:77–86PubMed Abbott BC, Aubert XM (1952) The force exerted by active striated muscle during and after change of length. J Physiol 117:77–86PubMed
go back to reference Allinger TL, Epstein M, Herzog W (1996) Stability of muscle fibers on the descending limb of the force–length relation. A theoretical consideration. J Biomech 29:627–633PubMedCrossRef Allinger TL, Epstein M, Herzog W (1996) Stability of muscle fibers on the descending limb of the force–length relation. A theoretical consideration. J Biomech 29:627–633PubMedCrossRef
go back to reference Askew GN, Marsh RL (1998) Optimal shortening velocity (V/V max) of skeletal muscle during cyclical contractions: length–force effects and velocity-dependent activation and deactivation. J Exp Biol 201:1527–1540PubMed Askew GN, Marsh RL (1998) Optimal shortening velocity (V/V max) of skeletal muscle during cyclical contractions: length–force effects and velocity-dependent activation and deactivation. J Exp Biol 201:1527–1540PubMed
go back to reference Bullimore SR, Leonard TR, Rassier DE, Herzog W (2007) History-dependence of isometric muscle force: effect of prior stretch or shortening amplitude. J Biomech 40:1518–1524PubMedCrossRef Bullimore SR, Leonard TR, Rassier DE, Herzog W (2007) History-dependence of isometric muscle force: effect of prior stretch or shortening amplitude. J Biomech 40:1518–1524PubMedCrossRef
go back to reference de Ruiter CJ, de Haan A (2003) Shortening-induced depression of voluntary force in unfatigued and fatigued human adductor pollicis muscle. J Appl Physiol 94:69–74PubMed de Ruiter CJ, de Haan A (2003) Shortening-induced depression of voluntary force in unfatigued and fatigued human adductor pollicis muscle. J Appl Physiol 94:69–74PubMed
go back to reference de Ruiter CJ, de Haan A, Jones DA, Sargeant AJ (1998) Shortening-induced force depression in human adductor pollicis muscle. J Physiol 507(Pt 2):583–591PubMedCrossRef de Ruiter CJ, de Haan A, Jones DA, Sargeant AJ (1998) Shortening-induced force depression in human adductor pollicis muscle. J Physiol 507(Pt 2):583–591PubMedCrossRef
go back to reference Derave W, Eijnde BO, Ramaekers M, Hespel P (2005) Soleus muscles of SAMP8 mice provide an accelerated model of skeletal muscle senescence. Exp Gerontol 40:562–572PubMedCrossRef Derave W, Eijnde BO, Ramaekers M, Hespel P (2005) Soleus muscles of SAMP8 mice provide an accelerated model of skeletal muscle senescence. Exp Gerontol 40:562–572PubMedCrossRef
go back to reference Edman KA, Caputo C, Lou F (1993) Depression of tetanic force induced by loaded shortening of frog muscle fibres. J Physiol 466:535–552PubMed Edman KA, Caputo C, Lou F (1993) Depression of tetanic force induced by loaded shortening of frog muscle fibres. J Physiol 466:535–552PubMed
go back to reference Herzog W (1998) History dependence of force production in skeletal muscle: a proposal for mechanisms. J Electromyogr Kinesiol 8:111–117PubMedCrossRef Herzog W (1998) History dependence of force production in skeletal muscle: a proposal for mechanisms. J Electromyogr Kinesiol 8:111–117PubMedCrossRef
go back to reference Herzog W, Leonard TR (1997) Depression of cat soleus-forces following isokinetic shortening. J Biomech 30:865–872PubMedCrossRef Herzog W, Leonard TR (1997) Depression of cat soleus-forces following isokinetic shortening. J Biomech 30:865–872PubMedCrossRef
go back to reference Herzog W, Leonard TR (2007) Residual force depression is not abolished following a quick shortening step. J Biomech 40:2806–2810PubMedCrossRef Herzog W, Leonard TR (2007) Residual force depression is not abolished following a quick shortening step. J Biomech 40:2806–2810PubMedCrossRef
go back to reference Herzog W, Leonard TR, Wu JZ (2000) The relationship between force depression following shortening and mechanical work in skeletal muscle. J Biomech 33:659–668PubMedCrossRef Herzog W, Leonard TR, Wu JZ (2000) The relationship between force depression following shortening and mechanical work in skeletal muscle. J Biomech 33:659–668PubMedCrossRef
go back to reference Higuchi H, Yanagida T, Goldman YE (1995) Compliance of thin filaments in skinned fibers of rabbit skeletal muscle. Biophys J 69:1000–1010PubMedCrossRef Higuchi H, Yanagida T, Goldman YE (1995) Compliance of thin filaments in skinned fibers of rabbit skeletal muscle. Biophys J 69:1000–1010PubMedCrossRef
go back to reference Huxley AF, Simmons RM (1971) Proposed mechanism of force generation in striated muscle. Nature 233:533–538PubMedCrossRef Huxley AF, Simmons RM (1971) Proposed mechanism of force generation in striated muscle. Nature 233:533–538PubMedCrossRef
go back to reference Josephson RK, Stokes DR (1999) Work-dependent deactivation of a crustacean muscle. J Exp Biol 202:2551–2565PubMed Josephson RK, Stokes DR (1999) Work-dependent deactivation of a crustacean muscle. J Exp Biol 202:2551–2565PubMed
go back to reference Julian FJ, Morgan DL (1979) The effect on tension of non-uniform distribution of length changes applied to frog muscle fibres. J Physiol 293:379–392PubMed Julian FJ, Morgan DL (1979) The effect on tension of non-uniform distribution of length changes applied to frog muscle fibres. J Physiol 293:379–392PubMed
go back to reference Kosterina N, Westerblad H, Lannergren J, Eriksson A (2008) Muscular force production after concentric contraction. J Biomech 41:2422–2429PubMedCrossRef Kosterina N, Westerblad H, Lannergren J, Eriksson A (2008) Muscular force production after concentric contraction. J Biomech 41:2422–2429PubMedCrossRef
go back to reference Kosterina N, Westerblad H, Eriksson A (2009) Mechanical work as predictor of force enhancement and force depression. J Biomech 42:1628–1634PubMedCrossRef Kosterina N, Westerblad H, Eriksson A (2009) Mechanical work as predictor of force enhancement and force depression. J Biomech 42:1628–1634PubMedCrossRef
go back to reference Lee HD, Herzog W (2003) Force depression following muscle shortening of voluntarily activated and electrically stimulated human adductor pollicis. J Physiol 551:993–1003PubMedCrossRef Lee HD, Herzog W (2003) Force depression following muscle shortening of voluntarily activated and electrically stimulated human adductor pollicis. J Physiol 551:993–1003PubMedCrossRef
go back to reference Leonard TR, Herzog W (2005) Does the speed of shortening affect steady-state force depression in cat soleus muscle? J Biomech 38:2190–2197PubMedCrossRef Leonard TR, Herzog W (2005) Does the speed of shortening affect steady-state force depression in cat soleus muscle? J Biomech 38:2190–2197PubMedCrossRef
go back to reference Liu X, Pollack GH (2002) Mechanics of F-actin characterized with microfabricated cantilevers. Biophys J 83:2705–2715PubMedCrossRef Liu X, Pollack GH (2002) Mechanics of F-actin characterized with microfabricated cantilevers. Biophys J 83:2705–2715PubMedCrossRef
go back to reference Maréchal G, Plaghki L (1979) The deficit of the isometric tetanic tension redeveloped after a release of frog muscle at a constant velocity. J Gen Physiol 73:453–467PubMedCrossRef Maréchal G, Plaghki L (1979) The deficit of the isometric tetanic tension redeveloped after a release of frog muscle at a constant velocity. J Gen Physiol 73:453–467PubMedCrossRef
go back to reference Meijer K, Grootenboer HJ, Koopman HF, van der Linden BJ, Huijing PA (1998) A Hill type model of rat medial gastrocnemius muscle that accounts for shortening history effects. J Biomech 31:555–563PubMedCrossRef Meijer K, Grootenboer HJ, Koopman HF, van der Linden BJ, Huijing PA (1998) A Hill type model of rat medial gastrocnemius muscle that accounts for shortening history effects. J Biomech 31:555–563PubMedCrossRef
go back to reference Morgan DL, Whitehead NP, Wise AK, Gregory JE, Proske U (2000) Tension changes in the cat soleus muscle following slow stretch or shortening of the contracting muscle. J Physiol 522(Pt 2):503–513PubMedCrossRef Morgan DL, Whitehead NP, Wise AK, Gregory JE, Proske U (2000) Tension changes in the cat soleus muscle following slow stretch or shortening of the contracting muscle. J Physiol 522(Pt 2):503–513PubMedCrossRef
go back to reference Nagy A, Cacciafesta P, Grama L, Kengyel A, Malnasi-Csizmadia A, Kellermayer MS (2004) Differential actin binding along the PEVK domain of skeletal muscle titin. J Cell Sci 117:5781–5789PubMedCrossRef Nagy A, Cacciafesta P, Grama L, Kengyel A, Malnasi-Csizmadia A, Kellermayer MS (2004) Differential actin binding along the PEVK domain of skeletal muscle titin. J Cell Sci 117:5781–5789PubMedCrossRef
go back to reference Rassier DE, Herzog W (2004) Considerations on the history dependence of muscle contraction. J Appl Physiol 96:419–427PubMedCrossRef Rassier DE, Herzog W (2004) Considerations on the history dependence of muscle contraction. J Appl Physiol 96:419–427PubMedCrossRef
go back to reference Roots H, Offer GW, Ranatunga KW (2007) Comparison of the tension responses to ramp shortening and lengthening in intact mammalian muscle fibres: crossbridge and non-crossbridge contributions. J Muscle Res Cell Motil 28:123–139PubMedCrossRef Roots H, Offer GW, Ranatunga KW (2007) Comparison of the tension responses to ramp shortening and lengthening in intact mammalian muscle fibres: crossbridge and non-crossbridge contributions. J Muscle Res Cell Motil 28:123–139PubMedCrossRef
go back to reference Rousanoglou EN, Oskouei AE, Herzog W (2007) Force depression following muscle shortening in sub-maximal voluntary contractions of human adductor pollicis. J Biomech 40:1–8PubMedCrossRef Rousanoglou EN, Oskouei AE, Herzog W (2007) Force depression following muscle shortening in sub-maximal voluntary contractions of human adductor pollicis. J Biomech 40:1–8PubMedCrossRef
go back to reference Ruff RL (1996) Effects of length changes on Na+ current amplitude and excitability near and far from the end-plate. Muscle Nerve 19:1084–1092PubMedCrossRef Ruff RL (1996) Effects of length changes on Na+ current amplitude and excitability near and far from the end-plate. Muscle Nerve 19:1084–1092PubMedCrossRef
go back to reference Schachar R, Herzog W, Leonard TR (2002) Force enhancement above the initial isometric force on the descending limb of the force–length relationship. J Biomech 35:1299–1306PubMedCrossRef Schachar R, Herzog W, Leonard TR (2002) Force enhancement above the initial isometric force on the descending limb of the force–length relationship. J Biomech 35:1299–1306PubMedCrossRef
go back to reference Van Noten P, Van Leemputte M (2009) Shortening amplitude affects the incomplete force recovery after active shortening in mouse soleus muscle. J Biomech 42:2636–2641PubMedCrossRef Van Noten P, Van Leemputte M (2009) Shortening amplitude affects the incomplete force recovery after active shortening in mouse soleus muscle. J Biomech 42:2636–2641PubMedCrossRef
Metadata
Title
The effect of muscle length on force depression after active shortening in soleus muscle of mice
Authors
Pieter Van Noten
Marc Van Leemputte
Publication date
01-07-2011
Publisher
Springer-Verlag
Published in
European Journal of Applied Physiology / Issue 7/2011
Print ISSN: 1439-6319
Electronic ISSN: 1439-6327
DOI
https://doi.org/10.1007/s00421-010-1760-8

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