Substructure and accessory proteins in scallop myosin filaments.
Open Access
- 1 August 1989
- journal article
- research article
- Published by Rockefeller University Press in The Journal of cell biology
- Vol. 109 (2) , 539-547
- https://doi.org/10.1083/jcb.109.2.539
Abstract
Native myosin filaments from scallop striated muscle fray into subfilaments of approximately 100-A diameter when exposed to solutions of low ionic strength. The number of subfilaments appears to be five to seven (close to the sevenfold rotational symmetry of the native filament), and the subfilaments probably coil around one another. Synthetic filaments assembled from purified scallop myosin at roughly physiological ionic strength have diameters similar to those of native filaments, but are much longer. They too can be frayed into subfilaments at low ionic strength. Synthetic filaments share what may be an important regulatory property with native filaments: an order-disorder transition in the helical arrangement of myosin cross-bridges that is induced on activation by calcium, removal of nucleotide, or modification of a myosin head sulfhydryl. Some native filaments from scallop striated muscle carry short "end filaments" protruding from their tips, comparable to the structures associated with vertebrate striated muscle myosin filaments. Gell electrophoresis of scallop muscle homogenates reveals the presence of high molecular weight proteins that may include the invertebrate counterpart of titin, a component of the vertebrate end filament. Although the myosin molecule itself may contain much of the information required to direct its assembly, other factors acting in vivo, including interactions with accessory proteins, probably contribute to the assembly of a precisely defined thick filament during myofibrillogenesis.This publication has 38 references indexed in Scilit:
- SH-1 modification of rabbit myosin interferes with calcium regulationJournal of Muscle Research and Cell Motility, 1989
- Invertebrate myosin filament: Subfilament arrangement in the wall of tubular filaments of insect flight musclesJournal of Molecular Biology, 1988
- Density of myosin filaments in the rat anococcygeus muscle, at rest and in contraction. IIJournal of Muscle Research and Cell Motility, 1988
- X-ray diffraction studies of the structural state of crossbridges in skinned frog sartorius muscle at low ionic strengthJournal of Muscle Research and Cell Motility, 1987
- Myosin and paramyosin are organized about a newly identified core structure.The Journal of cell biology, 1985
- Purification and properties of native titinJournal of Molecular Biology, 1984
- Electron microscopy and image analysis of myosin filaments from scallop striated muscleJournal of Molecular Biology, 1983
- Myosin minifilamentsJournal of Molecular Biology, 1980
- Polypeptide chains of intermediate molecular weight in myosin preparationsFEBS Letters, 1971
- Paramyosin and the filaments of molluscan “catch” muscles: I. Paramyosin: Structure and assemblyJournal of Molecular Biology, 1971