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Human platelet myosin. II. In vitro assembly and structure of myosin filaments
Abstract:
We have used electron microscopy and solubility measurements to investigate the assembly and structure of purified human platelet myosin and myosin rod into filaments. In buffers with ionic strengths of less than 0.3 M, platelet myosin forms filaments which are remarkable for their small size, being only 320 nm long and 10-11 nm wide in the center of the bare zone. The dimensions of these filaments are not affected greatly by variation of the pH between 7 and 8, variation of the ionic strength between 0.05 and 0.2 M, the presence or absence of 1 mM Mg++ or ATP, or variation of the myosin concentration between 0.05 and 0.7 mg/ml. In 1 mM Ca++ and at pH 6.5 the filaments grow slightly larger. More than 90% of purified platelet myosin molecules assemble into filaments in 0.1 M KC1 at pH 7. Purified preparations of the tail fragment of platelet myosin also form filaments. These filaments are slightly larger than myosin filaments formed under the same conditions, indicating that the size of the myosin filaments may be influenced by some interaction between the head and tail portions of myosin molecules. Calculations based on the size and shape of the myosin filaments, the dimensions of the myosin molecule and analysis of the bare zone reveal that the synthetic platelet myosin filaments consists of 28 myosin molecules arranged in a bipolar array with the heads of two myosin molecules projecting from the backbone of the filament at 14-15 nm intervals. The heads appear to be loosely attached to the backbone by a flexible portion of the myosin tail. Given the concentration of myosin in platelets and the number of myosin molecules per filament, very few of these thin myosin filaments should be present in a thin section of a platelet, even if all of the myosin molecules are aggregated into filaments.
Insights
Human platelet myosin forms small filaments in vitro, with dimensions influenced by molecular interactions. These findings suggest limited in-vivo filament presence, impacting platelet structure understanding.
Area of Science:
- Biochemistry
- Cell Biology
- Structural Biology
Background:
- Human platelets contain myosin, a key motor protein involved in cellular functions.
- Understanding myosin assembly into filaments is crucial for elucidating platelet mechanics and dynamics.
Purpose of the Study:
- To investigate the assembly and structure of purified human platelet myosin and myosin rod into filaments.
- To determine the factors influencing platelet myosin filament dimensions and organization.
Main Methods:
- Electron microscopy was employed to visualize filament structure.
- Solubility measurements were used to assess filament assembly.
- Purified human platelet myosin and myosin rod fragments were utilized.
Main Results:
- Platelet myosin forms small filaments (320 nm long, 10-11 nm wide) under low ionic strength conditions.
- Filament dimensions showed minimal sensitivity to pH, ionic strength, Mg++, ATP, or myosin concentration.
- Myosin tail fragments also formed filaments, slightly larger than intact myosin filaments.
- Calculations indicated filaments consist of 28 myosin molecules in a bipolar array with heads projecting at 14-15 nm intervals.
Conclusions:
- Platelet myosin filament formation is a complex process influenced by interactions between myosin head and tail regions.
- The calculated structure suggests a specific arrangement of myosin molecules within the filament.
- The study predicts limited in-vivo presence of these thin myosin filaments within platelets.