A hill-type muscle model expansion accounting for effects of varying transverse muscle load.

Siebert, Tobias; Stutzig, Norman; Rode, Christian · J Biomech · 2018

basic_science · Level V

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Abstract

Recent studies demonstrated that uniaxial transverse loading (F<sub>G</sub>) of a rat gastrocnemius medialis muscle resulted in a considerable reduction of maximum isometric muscle force (ΔF<sub>im</sub>). A hill-type muscle model assuming an identical gearing G between both ΔF<sub>im</sub> and F<sub>G</sub> as well as lifting height of the load (Δh) and longitudinal muscle shortening (Δl<sub>CC</sub>) reproduced experimental data for a single load. Here we tested if this model is able to reproduce experimental changes in ΔF<sub>im</sub> and Δh for increasing transverse loads (0.64 N, 1.13 N, 1.62 N, 2.11 N, 2.60 N). Three different gearing ratios were tested: (I) constant G<sub>c</sub> representing the idea of a muscle specific gearing parameter (e.g. predefined by the muscle geometry), (II) G<sub>exp</sub> determined in experiments with varying transverse load, and (III) G<sub>f</sub> that reproduced experimental ΔF<sub>im</sub> for each transverse load. Simulations using G<sub>c</sub> overestimated ΔF<sub>im</sub> (up to 59%) and Δh (up to 136%) for increasing load. Although the model assumption (equal G for forces and length changes) held for the three lower loads using G<sub>exp</sub> and G<sub>f</sub>, simulations resulted in underestimation of ΔF<sub>im</sub> by 38% and overestimation of Δh by 58% for the largest load, respectively. To simultaneously reproduce experimental ΔF<sub>im</sub> and Δh for the two larger loads, it was necessary to reduce F<sub>im</sub> by 1.9% and 4.6%, respectively. The model seems applicable to account for effects of muscle deformation within a range of transverse loading when using a linear load-dependent function for G.

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