The role of titin in eccentric muscle contraction

Author:

Herzog Walter1

Affiliation:

1. Human Performance Lab, Faculty of Kinesiology, University of Calgary, Calgary, AB T2N 1N4, Canada

Abstract

Muscle contraction and force regulation in skeletal muscle have been thought to occur exclusively through the relative sliding of and the interaction between the contractile filaments actin and myosin. While this two-filament sarcomere model has worked well in explaining the properties of isometrically and concentrically contracting muscle, it has failed miserably in explaining experimental observations in eccentric contractions. Here, I suggest, and provide evidence, that a third filament, titin, is involved in force regulation of sarcomeres by adjusting its stiffness in an activation-dependent (calcium) and active force-dependent manner. Upon muscle activation, titin binds calcium at specific sites, thereby increasing its stiffness, and cross-bridge attachment to actin is thought to free up binding sites for titin on actin, thereby reducing titin's free-spring length, thus increasing its stiffness and force upon stretch of active muscle. This role of titin as a third force regulating myofilament in sarcomeres, although not fully proven, would account for many of the unexplained properties of eccentric muscle contraction, while simultaneously not affecting the properties predicted by the two-filament cross-bridge model in isometric and concentric muscle function. Here, I identify the problems of the two-filament sarcomere model and demonstrate the advantages of the three-filament model by providing evidence of titin's contribution to active force in eccentric muscle function.

Publisher

The Company of Biologists

Subject

Insect Science,Molecular Biology,Animal Science and Zoology,Aquatic Science,Physiology,Ecology, Evolution, Behavior and Systematics

Reference56 articles.

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2. The force exerted by active striated muscle during and after change of length;Abbott;J. Physiol.,1952

3. Stability of muscle fibers on the descending limb of the force-length relation. A theoretical consideration;Allinger;J. Biomech.,1996

4. The myosin cross-bridge cycle and its control by twitchin phosphorylation in catch muscle;Butler;Biophys. J.,2001

5. Interactions between connected half-sarcomeres produce emergent mechanical behavior in a mathematical model of muscle;Campbell;PLOS Comput. Biol.,2009

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