Literature DB >> 3955183

Fine structure in near-field and far-field laser diffraction patterns from skeletal muscle fibers.

C L Sundell, Y E Goldman, L D Peachey.   

Abstract

Regions of muscle fibers that are many sarcomeres in length and uniform with regard to striation spacing, curvature, and tilt have been observed by light microscopy. We have investigated the possibility that these sarcomere domains can explain the fine structure in optical diffraction patterns of skeletal muscle fibers. We studied near-field and far-field diffraction patterns with respect to fiber translation and to masking of the laser beam. The position of diffracted light in the near-field pattern depends on sarcomere length and position of the diffracting regions within the laser beam. When a muscle fiber was translated longitudinally through a fixed laser beam, the fine structural lines in the near-field diffraction pattern moved in the same direction and by the same amount as the fiber movement. Translation of the muscle fiber did not result in fine structure movement in the far-field pattern. As the laser beam was incrementally masked from one side, some fine structural lines in both the near-field and far-field diffraction patterns changed in intensity while others remained the same. Eventually, all the fine structural lines broadened and decreased in intensity. Often a fine structural line increased in intensity or a dark area in the diffraction pattern became brighter as the laser beam was restricted. From these results we conclude that the fine structure in the laser diffraction pattern is due to localized and relatively uniform regions of sarcomeres (domains) and to cross interference among light rays scattered by different domains.

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Year:  1986        PMID: 3955183      PMCID: PMC1329492          DOI: 10.1016/S0006-3495(86)83662-1

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  12 in total

1.  Sarcomere shortening in striated muscle occurs in stepwise fashion.

Authors:  G H Pollack; T Iwazumi; H E ter Keurs; E F Shibata
Journal:  Nature       Date:  1977-08-25       Impact factor: 49.962

2.  Changes in sarcomere length during isometric tension development in frog skeletal muscle.

Authors:  D R Cleworth; K A Edman
Journal:  J Physiol       Date:  1972-12       Impact factor: 5.182

3.  Helicoids in the T system and striations of frog skeletal muscle fibers seen by high voltage electron microscopy.

Authors:  L D Peachey; B R Eisenberg
Journal:  Biophys J       Date:  1978-05       Impact factor: 4.033

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

Authors:  Y E Goldman; R M Simmons
Journal:  J Physiol       Date:  1984-05       Impact factor: 5.182

5.  Light diffractometry for determining the sarcomere length of striated muscle: an evaluation.

Authors:  A F Leung
Journal:  J Muscle Res Cell Motil       Date:  1983-08       Impact factor: 2.698

6.  Fine structures in the light diffraction pattern of striated muscle.

Authors:  A F Leung
Journal:  J Muscle Res Cell Motil       Date:  1984-10       Impact factor: 2.698

7.  Is stepwise sarcomere shortening an artefact?

Authors:  J D Altringham; R Bottinelli; J W Lacktis
Journal:  Nature       Date:  1984 Feb 16-22       Impact factor: 49.962

8.  Intensity of light diffraction from striated muscle as a function of incident angle.

Authors:  R J Baskin; R L Lieber; T Oba; Y Yeh
Journal:  Biophys J       Date:  1981-12       Impact factor: 4.033

9.  Calculation of the laser diffraction intensity of striated muscle by numerical methods.

Authors:  A F Leung
Journal:  Comput Programs Biomed       Date:  1982-12

10.  Chemically skinned mammalian skeletal muscle. I. The structure of skinned rabbit psoas.

Authors:  A B Eastwood; D S Wood; K L Bock; M M Sorenson
Journal:  Tissue Cell       Date:  1979       Impact factor: 2.466

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  15 in total

1.  Identification of source of oscillations in apparent sarcomere length measured by laser diffraction.

Authors:  K Burton; A F Huxley
Journal:  Biophys J       Date:  1995-06       Impact factor: 4.033

2.  Obstructed metabolite diffusion within skeletal muscle cells in silico.

Authors:  Mayis K Aliev; Alexander N Tikhonov
Journal:  Mol Cell Biochem       Date:  2011-06-28       Impact factor: 3.396

3.  Stepwise dynamics of connecting filaments measured in single myofibrillar sarcomeres.

Authors:  P Yang; T Tameyasu; G H Pollack
Journal:  Biophys J       Date:  1998-03       Impact factor: 4.033

4.  Spectral analysis of muscle fiber images as a means of assessing sarcomere heterogeneity.

Authors:  M P Slawnych; L Morishita; B H Bressler
Journal:  Biophys J       Date:  1996-01       Impact factor: 4.033

5.  Degree of polarization of light diffracted from resting striated muscle.

Authors:  A F Leung
Journal:  Cell Biophys       Date:  1987-04

6.  Diffraction rings obtained from a suspension of skeletal myofibrils by laser light illumination. Study of internal structure of sarcomeres.

Authors:  S Ishiwata; N Okamura
Journal:  Biophys J       Date:  1989-12       Impact factor: 4.033

7.  Correlation between the light diffraction pattern and the structure of a muscle fibre realized with Ewald's construction.

Authors:  F Zite-Ferenczy; K D Häberle; R Rüdel; W Wilke
Journal:  J Muscle Res Cell Motil       Date:  1986-06       Impact factor: 2.698

8.  Theoretical Fraunhofer light diffraction patterns calculated from three-dimensional sarcomere arrays imaged from isolated cardiac cells at rest.

Authors:  K P Roos; A F Leung
Journal:  Biophys J       Date:  1987-08       Impact factor: 4.033

9.  Light diffraction patterns and sarcomere length variation in striated muscle fibers of Limulus.

Authors:  K Burton; R J Baskin
Journal:  Pflugers Arch       Date:  1986-04       Impact factor: 3.657

10.  Characterization of the myosin adenosine triphosphate (M.ATP) crossbridge in rabbit and frog skeletal muscle fibers.

Authors:  M Schoenberg
Journal:  Biophys J       Date:  1988-07       Impact factor: 4.033

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