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Archives of Physiology and Biochemistry
The Journal of Metabolic Diseases
Volume 108, 2000 - Issue 5
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Research Article

Force During Stretches of Rat Skeletal Muscles after Hypertonia at Short and Long Lengths

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Pages 391-397 | Published online: 03 Oct 2008

References

  • Best TM, McCabe RP, Corr D, Vanderby R Jr. (1998): Eval-uation of a new method to create a standardized muscle stretch injury. Med Sci Sports Exerc 30: 200–205.
  • Booth FW (1977): Time course of muscular atrophy during immobilization of hindlimbs in rats. J Appl Physiol 43: 656–661.
  • Brooks VB, Curtis DR, Eccles JC (1957): The action of tetanus toxin on the inhibition of motoneurones. J Phys-iol (Lond) 135: 655–672.
  • Cutlip RG, Stauber WT, Willison RH, McIntosh TA, Means KH (1997): Dynamometer for rat plantar flexor muscles in vivo. Med Biol Eng Comput 35: 540–543.
  • Ettema GJ, van Soest AJ, Huijing PA (1990): The role of series elastic structures in prestretch-induced work enhancement during isotonic and isokinetic contractions. J Exp Bio1154: 121–136.
  • Heslinga JW, te Kronnie G, Huijing PA (1995): Growth and immobilization effects on sarcomeres: a comparison between gastrocnemius and soleus muscles of the adult rat. Eur J Appl Physiol 70: 49–57.
  • Huet de la Tour E, Tardieu C, Tabary JC, Tabary C (1979): Decrease of muscle extensibility and reduction of sar-comere number in soleus muscle following a local injec-tion of tetanus toxin. J Neurol Sci 40: 123–131.
  • Hunter KD, Faulkner JA (1997): Pliometric contraction-induced injury of mouse skeletal muscle: effect of initial length. J Appl Physiol 82: 278–283.
  • Järvinen MJ, Einola SA, Virtanen EO (1992): Effect of the position of immobilization upon the tensile properties of the rat gastrocnemius muscle. Arch Phys Med Rehabil 73: 253–257.
  • Lynn R, Talbot JA, Morgan DL (1998): Differences in rat skeletal muscles after incline and decline running. J Appl Physiol 85: 98–104.
  • McCully KK., Faulkner JA (1986): Characteristics of length-ening contractions associated with injury to skeletal mus-cle fibers. J Appl Physiol 61: 293–299.
  • Mizuno Y, Chou SM (1990): Soleus-specific myopathy induced by passive stretching under local tetanus. Muscle Nerve 13: 923–932.
  • Morgan DL (1990): New insights into the behavior of mus-cle during active lengthening. Biophys J 57: 209–221.
  • Morgan DL, Allen DG (1999): Early events in stretch-induced muscle damage. J Appl Physiol 87: 2007–2015.
  • Muchnik S, Rubinstein EH (1967): Mechanism of the local tetanus induced by intramuscular tetanus toxin. Acta Physiol Lat Am 17: 166–174.
  • Ranson SW, Dixon HH (1928): The elasticity and ductility of muscle in the myostatic contracture caused by tetanus toxin. Amer J Physiol 86: 312–319.
  • Savolainen J (1987): Acid and alkaline proteolytic activities of cast-immobilized rat hind-limb muscles after electric stimulation. Arch Phys Med Rehabil 68: 481–485.
  • Stauber WT, Smith CA, Miller GR, Stauber FD: Recovery of rat soleus muscles from 6 weeks of repeated strain injury. Muscle Nerve (in press).
  • Talbot JA, Morgan DL (1998): The effects of stretch parame-ters on eccentric exercise-induced damage to toad skele-tal muscle. J Muscle Res Cell Motil 19: 237–245.
  • Warren GL, Hayes DA, Lowe DA, Armstrong RB (1993): Mechanical factors in the initiation of eccentric contrac-tion-induced injury in rat soleus muscle. J Physiol (Lond) 464: 457–475.
  • Willems MET, Stauber WT (1999): Isometric and concentric performance of electrically stimulated ankle plantar flexor muscles in intact rat. Exp Physiol 84: 379–389.
  • Willems MET, Stauber WT (2000): Performance of plantar flexor muscles with eccentric and isometric contractions in intact rats. Med Sci Sports Exerc 32: 1293–1299.
  • Williams PE, Goldspink G (1976): The effect of denervation and dystrophy on the adaptation of sarcomere number to the functional length of the muscle in young and adult mice. J Anat 122: 455–465.
  • Williams PE, Goldspink G (1978): Changes in sarcomere length and physiological properties in immobilized muscle. JAnat 127: 459–468.

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