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May 1, 1984The Journal of Physiology152 citationsOpen Access

Control of sarcomere length in skinned muscle fibres of Rana temporaria during mechanical transients.

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YGYale E. GoldmanRSRobert Simmons

Key Result

A new laser diffraction technique with incident-angle oscillation successfully measured sarcomere length in skinned muscle fibres, revealing they are less stiff than intact fibres at a given tension.

Structured PICO

P
Population
Single skinned muscle fibres of Rana temporaria
I
Intervention
High-speed measurement technique using a galvanometer mirror directing helium-neon laser light with incident-angle oscillation
C
Comparator
Measurements obtained with a compound microscope
O
Outcome
Accuracy and resolution of sarcomere length measurementsurrogate

A new laser diffraction technique with incident-angle oscillation provides sufficient time and spatial resolution for a 'sarcomere length clamp' in skinned muscle fibers.

Limitations

  • Volume diffraction effects can cause apparent sarcomere length to differ from mean striation spacing at high spatial resolution.

Abstract

A new technique is described for high‐speed measurement of striation spacing of single skinned muscle fibres. A galvanometer mirror directs helium‐neon laser light on to the muscle fibre at a variable angle. Light diffracted by the cross‐striations is collected by a position‐sensitive photodetector. The incident angle necessary to centre the diffracted light beam on to the photodetector is related to sarcomere length. The instrument was tested by comparison with measurements obtained with a compound microscope. Discrepancies of several nanometers per half sarcomere were observed between these two methods. When the incident angle of the laser beam was varied sinusoidally about its mean position the magnitude of the discrepancy was reduced. During steady passive shortening of the muscle fibres the output of the diffraction instrument often displayed pauses and brief periods of rapid shortening. These irregularities were eliminated by averaging the sarcomere length output over a range of illumination angles by oscillating the incident angle of the laser beam. The results suggest that at the spatial resolution of several nanometers per half sarcomere, volume diffraction effects can cause the apparent sarcomere length measured from the angle of coherent light diffraction to differ from the mean striation spacing. With incident‐angle oscillation the time and spatial resolution of the equipment were satisfactory for the sarcomere length signal to be fed back to a length controller for a 'sarcomere length clamp'. In active contractions, stiffness was closely related to steady developed tension at sub‐saturating calcium concentrations. Skinned fibres are less stiff than intact fibres at a given level of developed tension.

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Cite This Study

Goldman et al. (1984) studied Skinned muscle fibres of Rana temporaria. High-speed measurement of striation spacing using helium-neon laser light diffraction vs. Compound microscope measurements was evaluated on Sarcomere length measurement accuracy and stiffness. A new laser diffraction technique with incident-angle oscillation successfully measured sarcomere length in skinned muscle fibres, revealing they are less stiff than intact fibres at a given tension.

synapsesocial.com/papers/6a0909c314243797f79d0ef9https://doi.org/10.1113/jphysiol.1984.sp015215
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Also Consider

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

  1. 1Tension development in highly stretched vertebrate muscle fibres1966 · 351 citations
  2. 2The dependence of force and shortening velocity on substrate concentration in skinned muscle fibres from Rana temporaria.1984 · 143 citations
  3. 3Tension responses to sudden length change in stimulated frog muscle fibres near slack length1977 · 859 citations
  4. 4The relation between calcium and contraction kinetics in skinned muscle fibres1970 · 164 citations
  5. 5Interpretation of light diffraction by cross‐striated muscle as Bragg reflexion of light by the lattice of contractile proteins.1979 · 110 citations