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August 15, 1991Proceedings of the National Academy of Sciences313 citationsOpen Access

Regulation of skeletal muscle stiffness and elasticity by titin isoforms: a test of the segmental extension model of resting tension.

KWK WangRMRoger McCarterJWJohn Wright

Structured PICO

P
Population
Mechanically skinned split fibers from six skeletal muscles (adductor magnus, psoas, longissimus dorsi, sartorius, soleus, semitendinosus) and cardiac muscle of 5 adult rabbits.
I
Intervention
Stepwise stretching of split muscle fibers in a relaxing solution.
O
Outcome
Resting tension-sarcomere length (stress-strain) curves and titin epitope translocation.surrogate

The study provides direct evidence that the size of titin isoforms determines the elastic limit and stiffness of muscle sarcomeres.

Abstract

To explore the role of titin filaments in muscle elasticity, we measured the resting tension-sarcomere length curves of six rabbit skeletal muscles that express three size classes of titin isoform. The stress-strain curves of the split fibers of these muscles displayed a similar multiphasic shape, with an exponential increase in tension at low sarcomere strain followed by a leveling of tension and a decrease in stiffness at and beyond an elastic limit (yield point) at higher sarcomere strain. Significantly, positive correlations exist between the size of the expressed titin isoform, the sarcomere length at the onset of exponential resting tension, and the yield point of each muscle. Immunoelectron microscopic studies of an epitope in the extensible segment of titin revealed a transition in the elastic behavior of the titin filaments near the yield point sarcomere length of these muscles, providing direct evidence of titin's involvement in the genesis of resting tension. Our data led to the formulation of a segmental extension model of resting tension that recognizes the interplay of three major factors in shaping the stress-strain curves: the net contour length of an extensible segment of titin filaments (between the Z line and the ends of the thick filaments), the intrinsic molecular elasticity of titin, and the strength of titin thick filament anchorage. Our data further suggest that skeletal muscle cells may control and modulate stiffness and elastic limit coordinately by selective expression of specific titin isoforms.

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Cite This Study

Wang et al. (1991) studied this question.

synapsesocial.com/papers/6a18aef1673175fe754ac725https://doi.org/10.1073/pnas.88.16.7101
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Myofibrils Bear Most of the Resting Tension in Frog Skeletal Muscle1985 · 277 citations
  2. 2Extensible and Less-Extensible Domains of Connectin Filaments in Stretched Vertebrate Skeletal Muscle Sarcomeres as Detected by Immunofluorescence and Immunoelectron Microscopy Using Monoclonal Antibodies11988 · 149 citations
  3. 3Sodium Dodecyl Sulfate Gel Electrophoresis Studies of Connectin-Like High Molecular Weight Proteins of Various Types of Vertebrate and Invertebrate Muscles11986 · 98 citations
  4. 4The Mechanism of Muscle Contractio1986 · 427 citations
  5. 5The organization of titin filaments in the half-sarcomere revealed by monoclonal antibodies in immunoelectron microscopy: a map of ten nonrepetitive epitopes starting at the Z line extends close to the M line.1988 · 623 citations