Force reduction induced by unidirectional transversal muscle loading is independent of local pressure

J Biomech. 2016 May 3;49(7):1156-1161. doi: 10.1016/j.jbiomech.2016.02.053. Epub 2016 Mar 4.

Abstract

Transversal unidirectional compression applied to muscles via external loading affects muscle contraction dynamics in the longitudinal direction. A recent study reported decreasing longitudinal muscle forces with increasing transversal load applied with a constant contact area (i.e., leading to a simultaneous increase in local pressure). To shed light on these results, we examine whether the decrease in longitudinal force depends on the load, the local pressure, or both. To this end, we perform isometric experiments on rat M. gastrocnemius medialis without and with transversal loading (i) changing the local pressure from 1.1-3.2Ncm(-2) (n=9) at a constant transversal load (1.62N) and (ii) increasing the transversal load (1.15-3.45N) at a constant local pressure of 2.3Ncm(-2) (n=7). While we did not note changes in the decrease in longitudinal muscle force in the first experiment, the second experiment resulted in an almost-linear reduction of longitudinal force between 7.5±0.6% and 14.1±1.7%. We conclude that the observed longitudinal force reduction is not induced by local effects such as malfunction of single muscle compartments, but that similar internal stress conditions and myofilament configurations occur when the local pressure changes given a constant load. The decreased longitudinal force may be explained by increased internal pressure and a deformed myofilament lattice that is likely associated with the decomposition of cross-bridge forces on the one hand and the inhibition of cross-bridges on the other hand.

Keywords: Impact load; Isometric contraction; Muscle compression; Rattus norvegicus; Viscoelastic material properties.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Animals
  • Isometric Contraction / physiology
  • Muscle Contraction
  • Muscle, Skeletal / physiology*
  • Pressure
  • Rats, Wistar
  • Stress, Mechanical