On a three-dimensional constitutive model for history effects in skeletal muscles

被引:0
作者
Robert Seydewitz
Tobias Siebert
Markus Böl
机构
[1] Technische Universität Braunschweig,Institute of Solid Mechanics
[2] University of Stuttgart,Institute of Sport and Motion Science
来源
Biomechanics and Modeling in Mechanobiology | 2019年 / 18卷
关键词
Skeletal muscle; Force depression; Force enhancement; Muscle properties; Three-dimensional modelling; Parameter identification;
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学科分类号
摘要
An exceptional property of skeletal muscles that distinguishes them from other soft tissues is their ability to contract by generating active forces, which in turn are initiated by an electrochemical trigger. Some of these so-called active material properties are generally characterised using isometric contraction experiments at various muscle lengths. In this context, experimental observations revealed that unlike the widespread assumption in muscle modelling, reaction forces indeed depend on so-called history effects, which can be classified into force enhancement and force depression. For the experimental settings of force enhancement, two subsequent isometric contractions are interrupted by an isokinetic extension. The isometric reaction force is increased after the isokinetic extension with respect to a reference measurement, while in the case of force depression, isokinetic shortening is responsible for forces below a certain isometric reference measurement. Most theoretical investigations of force enhancement and force depression use one-dimensional models to simulate the force response considering muscle deformation to be homogeneous. In contrast, the aim of the present study is to analyse history effects in skeletal muscle tissue using a three-dimensional geometry model of the whole muscle–tendon unit. Therefore, a purely phenomenological approach is presented. The model is implemented in the finite element framework to analyse history effects for the boundary value problem of the entire three-dimensional muscle–tendon geometry. The constitutive model shows good agreement with the experimental data. Furthermore, the simulations reveal information about the inhomogeneous stretch distributions within the muscle tissues.
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页码:1665 / 1681
页数:16
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  • [51] Edman KA(1987)The effect of inorganic phosphate on the atp hydrolysis rate and the tension transients in chemically skinned rabbit psoas fibers Pflügers Arch 408 1-C1401
  • [52] Caputo C(2015)An action potential-driven model of soleus muscle activation dynamics for locomotor-like movements J Neural Eng 12 046025-788
  • [53] Lou F(2013)Force enhancement in lengthening contractions of cat soleus muscle in situ: transient and steady-state aspects Physiol Rep 1 e00017-467
  • [54] Ehret AE(2008)Muscular force production after concentric contraction J Biomech 41 2422-454
  • [55] Böl M(2009)Mechanical work as predictor of force enhancement and force depression J Biomech 42 1628-157
  • [56] Itskov M(2012)History effect and timing of force production introduced in a skeletal muscle model Biomech Model Mechanobiol 11 947-470
  • [57] Ettema GJ(2008)Residual force enhancement exceeds the isometric force at optimal sarcomere length for optimized stretch conditions J Appl Physiol 105 457-181
  • [58] Meijer K(2010)Force enhancement following stretch in a single sarcomere Am J Physiol Cell Physiol 299 C1398-563
  • [59] Flory PJ(2008)Minimally invasive high-speed imaging of sarcomere contractile dynamics in mice and humans Nature 454 784-513
  • [60] Forcinito M(1979)The deficit of the isometric tetanic tension redeveloped after a release of frog muscle at a constant velocity J Gen Physiol 73 453-990