Abstract
Results were obtained from contracting frog muscles by collecting high quality time-resolved, two-dimensional, X-ray diffraction patterns at the British Synchrotron Radiation Source (SERC, Daresbury, Laboratory). The structural transitions associated with isometric tension generation were recorded under conditions in which the three-dimensional order characteristic of the rest state is either present or absent. In both cases, new layer lines appear during tension generation, subsequent to changes from activation events in the thin filaments. Compared with the 'decorated' actin layer lines of the rigor state, the spacings of the new layer lines are similar whereas their intensities differ substantially. We conclude that in contracting muscle an actomyosin complex is formed whose structure is not like that in rigor, although it is possible that the interacting sites are the same. Transition from rest to plateau of tension is accompanied by approximately 1.6% increase in the axial spacing of the myosin layer lines. This is explained as arising from axial disposition of the interacting myosin heads in the actomyosin complex. Model calculations are presented which support this view. We argue that in a situation where an actomyosin complex is formed during contraction, one cannot describe the diffraction features as being either thick or thin filament based. Accordingly, the layer lines seen during tension generation are referred to as actomyosin layer lines. It is shown that these layer lines can be indexed as submultiples of a minimum axial repeat of approximately 218.7 nm. After lattice disorder effects are taken into account, the intensity increases on the 15th and 21st AM layer lines at spacings of approximately 14.58 and 10.4 nm respectively, show the same time course as tension rise. However, the time course of the intensity increase of the other actomyosin layer lines and of the spacing change (which is the same for both phenomena) shows a substantial lead over tension rise. These findings suggest that the actomyosin complex formed prior to tension rise is a non-tension-generating state and that this is followed by a transition of the complex to a tension-generating state. The intensity increase in the 15th actomyosin layer line, which parallels tension rise, can be accounted for assuming that in the tension-generating state the attached heads adopt (axially) a more perpendicular orientation with respect to the muscle axis than is seen at rest or in the non-tension-generating state. This suggests the existence of at least two structurally distinct interacting myosin head conformations.(ABSTRACT TRUNCATED AT 400 WORDS)
MeSH Terms
Actomyosin/ultrastructure
Animals
Isometric Contraction
Kinetics
Rana catesbeiana/physiology
Stress, Mechanical
X-Ray Diffraction/methods
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
Bordas J
SERC Daresbury Laboratory, Warrington, UK.
Diakun G P
Diaz F G
Harries J E
Lewis R A
Lowy J
Mant G R
Martin-Fernandez M L
Towns-Andrews E
References (27)
27 references, click to expand
-
Evidence for structurally different attached states of myosin cross-bridges on actin during contraction of fish muscle.
Biophys J. 1992 Aug;63(2):387-96
PMID: 1420885
-
Three-dimensional structure of the vertebrate muscle A-band. II. The myosin filament superlattice.
J Mol Biol. 1980 Aug 25;141(4):409-39
PMID: 6969319
-
Use of an X-ray television for diffraction of the frog striated muscle.
Nature. 1975 Jun 26;255(5511):728-9
PMID: 1079574
-
X-ray evidence for radial cross-bridge movement and for the sliding filament model in actively contracting skeletal muscle.
J Mol Biol. 1973 Jul 15;77(4):549-68
PMID: 4541885
-
Crossbridge behaviour during muscle contraction.
J Muscle Res Cell Motil. 1985 Apr;6(2):153-61
PMID: 2993356
-
Actomyosin structure in contracting muscle detected by rapid freezing.
Nature. 1985 Sep 12-18;317(6033):182-4
PMID: 4033798
-
Muscular contraction.
J Physiol. 1974 Nov;243(1):1-43
PMID: 4449057
-
Orientation of spin labels attached to cross-bridges in contracting muscle fibres.
Nature. 1982 Dec 23;300(5894):776-8
PMID: 6294531
-
Arrangement of myosin heads in relaxed thick filaments from frog skeletal muscle.
J Mol Biol. 1986 Dec 20;192(4):831-51
PMID: 3495665
-
The mechanism of muscle contraction.
CRC Crit Rev Biochem. 1986;21(1):53-118
PMID: 3524992
-
Time-resolved X-ray diffraction studies of the myosin layer-line reflections during muscle contraction.
J Mol Biol. 1982 Jul 15;158(4):637-84
PMID: 6981706
-
Tension transients during the rise of tetanic tension in frog muscle fibres.
J Physiol. 1986 Mar;372:595-609
PMID: 3487643
-
X-ray diffraction of muscle labelled with antibody to C-protein.
Nat New Biol. 1973 Aug 1;244(135):152-4
PMID: 4516378
-
Muscle structure and theories of contraction.
Prog Biophys Biophys Chem. 1957;7:255-318
PMID: 13485191
-
Myosin head movements are synchronous with the elementary force-generating process in muscle.
Nature. 1992 May 14;357(6374):156-8
PMID: 1579164
-
The mechanism of muscular contraction.
Science. 1969 Jun 20;164(3886):1356-65
PMID: 4181952
-
Fraction of myosin cross-bridges bound to actin in active muscle fibers: estimation by fluorescence anisotropy measurements.
Proc Natl Acad Sci U S A. 1985 Dec;82(24):8478-82
PMID: 3866235
-
The low-angle x-ray diagram of vertebrate striated muscle and its behaviour during contraction and rigor.
J Mol Biol. 1967 Dec 14;30(2):383-434
PMID: 5586931
-
X-ray diffraction of muscle labelled with antibody to troponin-C.
Nat New Biol. 1973 Aug 1;244(135):154-5
PMID: 4198896
-
Changes in the cross-striations of muscle during contraction and stretch and their structural interpretation.
Nature. 1954 May 22;173(4412):973-6
PMID: 13165698
-
Two-dimensional time resolved X-ray diffraction of muscle: recent results.
Adv Biophys. 1991;27:15-33
PMID: 1755357
-
Actin filament organization and myosin head labelling patterns in vertebrate skeletal muscles in the rigor and weak binding states.
J Muscle Res Cell Motil. 1988 Aug;9(4):344-58
PMID: 3065359
-
Structural changes in muscle during contraction; interference microscopy of living muscle fibres.
Nature. 1954 May 22;173(4412):971-3
PMID: 13165697
-
Changes in the 5.9 nm actin layer-line on activation of frog skeletal muscles.
Adv Exp Med Biol. 1988;226:369-80
PMID: 3261488
-
X-ray evidence for conformational changes in the myosin filaments of vertebrate striated muscle.
J Mol Biol. 1975 Feb 15;92(1):113-43
PMID: 1080204
-
Structural changes during activation of frog muscle studied by time-resolved X-ray diffraction.
J Mol Biol. 1986 Apr 5;188(3):325-42
PMID: 3735425
-
Time-resolved changes in equatorial x-ray diffraction and stiffness during rise of tetanic tension in intact length-clamped single muscle fibers.
Biophys J. 1991 Jun;59(6):1273-83
PMID: 1873464