DocumentCode :
1428498
Title :
A mathematical model that predicts skeletal muscle force
Author :
Wexler, Anthony S. ; Ding, Jun ; Binder-Macleod, Stuart A.
Author_Institution :
Dept. of Mech. Eng., Delaware Univ., Newark, DE, USA
Volume :
44
Issue :
5
fYear :
1997
fDate :
5/1/1997 12:00:00 AM
Firstpage :
337
Lastpage :
348
Abstract :
This study demonstrates the validity of a mathematical model that predicts the force generated by rat skeletal muscles during brief subtetanic and tetanic isometric contractions. The model consists of three coupled differential equations (ODEs). The first two equations represent the calcium dynamics and the third equation represents force dynamics. The model parameters were identified from brief trains of regularly spaces pulses [constant-frequency trains (CFTs)] that produce subtetanic muscle responses. Using these parameters, the model was able to predict isometric forces from other stimulation patterns. For the gastrocnemius muscles predictions were made for responses to CFTs with interpulse intervals (IPI´s) ranging from 10 to 50 ms and variable-frequency trains (VFT´s), where the initial IPI=10 ms and the remaining IPIs were identical to those used for the CFTs. For the soleus muscles predictions were made for 10-100-ms CFTs. The shape of the predicted responses closely match the experimental data. Comparisons between experimental and modeled force-time integrals, peak forces, and time-to-peak also suggest excellent agreement between the model and the experiment data. Many physiological parameters predicted by the model agree with values obtained independently by others. In conclusion, the model accurately predicts isometric forces generated by rat gastrocnemius and soleus muscles produced by brief stimulation trains.
Keywords :
biomechanics; differential equations; force; muscle; physiological models; 10 to 100 ms; Ca; Hill-type model; brief stimulation trains; brief subtetanic contractions; calcium dynamics; constant-frequency trains; force dynamics; gastrocnemius; interpulse intervals; isometric forces; mathematical model; rat skeletal muscles; regularly spaces pulses; skeletal muscle force prediction; soleus; tetanic isometric contractions; Biomechanics; Calcium; Differential equations; Fatigue; Mathematical model; Mechanical engineering; Muscles; Neuromuscular stimulation; Predictive models; Shape; Actins; Adenosine Triphosphatases; Animals; Binding Sites; Calcium; Isometric Contraction; Models, Biological; Muscle, Skeletal; Myosins; Rats; Rats, Sprague-Dawley; Sarcoplasmic Reticulum; Troponin;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/10.568909
Filename :
568909
Link To Document :
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