Literature DB >> 2720069

Interactions between actin and myosin filaments in skeletal muscle visualized in frozen-hydrated thin sections.

B L Trus1, A C Steven, A W McDowall, M Unser, J Dubochet, R J Podolsky.   

Abstract

For the purpose of determining net interactions between actin and myosin filaments in muscle cells, perhaps the single most informative view of the myofilament lattice is its averaged axial projection. We have studied frozen-hydrated transverse thin sections with the goal of obtaining axial projections that are not subject to the limitations of conventional thin sectioning (suspect preservation of native structure) or of equatorial x-ray diffraction analysis (lack of experimental phases). In principle, good preservation of native structure may be achieved with fast freezing, followed by low-dose electron imaging of unstained vitrified cryosections. In practice, however, cryosections undergo large-scale distortions, including irreversible compression; furthermore, phase contrast imaging results in a nonlinear relationship between the projected density of the specimen and the optical density of the micrograph. To overcome these limitations, we have devised methods of image restoration and generalized correlation averaging, and applied them to cryosections of rabbit psoas fibers in both the relaxed and rigor states. Thus visualized, myosin filaments appear thicker than actin filaments by a much smaller margin than in conventional thin sections, and particularly so for rigor muscle. This may result from a significant fraction of the myosin S1-cross-bridges averaging out in projection and thus contributing only to the baseline of projected density. Entering rigor incurs a loss of density from an annulus around the myosin filament, with a compensating accumulation of density around the actin filament. This redistribution of mass represents attachment of the fraction of cross-bridges that are visible above background. Myosin filaments in the "nonoverlap" zone appear to broaden on entering rigor, suggesting that on deprivation of ATP, cross-bridges in situ move outwards even without actin in their immediate proximity.

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Year:  1989        PMID: 2720069      PMCID: PMC1330555          DOI: 10.1016/S0006-3495(89)82870-X

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


  27 in total

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Journal:  J Mol Biol       Date:  1981-07-15       Impact factor: 5.469

5.  Three-dimensional structure of the vertebrate muscle A-band. III. M-region structure and myosin filament symmetry.

Authors:  P K Luther; P M Munro; J M Squire
Journal:  J Mol Biol       Date:  1981-10-05       Impact factor: 5.469

6.  Evidence for cross-bridge attachment in relaxed muscle at low ionic strength.

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Journal:  Proc Natl Acad Sci U S A       Date:  1982-12       Impact factor: 11.205

7.  Cryo-electron microscopy of vitrified insect flight muscle.

Authors:  A W McDowall; W Hofmann; J Lepault; M Adrian; J Dubochet
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8.  X-ray diffraction evidence for cross-bridge formation in relaxed muscle fibers at various ionic strengths.

Authors:  B Brenner; L C Yu; R J Podolsky
Journal:  Biophys J       Date:  1984-09       Impact factor: 4.033

9.  Adiabatic compressibility of globular proteins.

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  8 in total

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5.  Disorder induced in nonoverlap myosin cross-bridges by loss of adenosine triphosphate.

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Journal:  Biophys J       Date:  1989-11       Impact factor: 4.033

6.  Structure of the fission yeast actomyosin ring during constriction.

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7.  Evaluation of freeze substitution in rabbit skeletal muscle. Comparison of electron microscopy to X-ray diffraction.

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8.  Structural changes in muscle crossbridges accompanying force generation.

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