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F Oosawa

Publications and source records attributed to F Oosawa.

At least 37 records · Page 2Linked to original sources

Crystallization and preliminary crystallographic data of chicken gizzard G-actin . DNase I complex and Physarum G-actin . DNase I complex.

Smooth muscle G-actin from chicken gizzard and Physarum plasmodium G-actin both interact with DNase I and form 1 : 1 complexes. These complexes were crystallized by using polyethylene glycol 6000 as a precipitant. Both crystals belong to the same orthorhombic space group P2(1)2(1)2(1). The cell dimensions of chicken gizzard G-actin.DNase I complex are a=42.00 +/- 0.07 A, b=225.3 +/- 0.4 A, and c=77.4 +/- 0.1 A, while those of Physarum G-actin.DNase I complex are a=42 A, b=221 A, and c=77 A.

Actins↗

Protonmotive force and motility of Bacillus subtilis.

Motility of Bacillus subtilis was inhibited within a few minutes by a combination of valinomycin and a high concentration of potassium ions in the medium at neutral pH. Motility was restored by lowering the concentration of valinomycin or potassium ions. The valinomycin concentration necessary for motility inhibition was determined at various concentrations of potassium ions and various pH's. At pH 7.5, valinomycin of any concentration did not inhibit the motility, when the potassium ion concentration was lower than 9 mM. In the presence of 230 mM potassium ion, the motility inhibition by valinomycin was not detected at pH lower than 6.1. These results are easily explained by the idea that the motility of B. subtilis is supported by the electrochemical potential difference of the proton across the membrane, or the protonmotive force. The electrochemical potential difference necessary for motility was estimated to be about -90 mV.

Bacillus subtilis↗

Effect of substitution of monovalent anions in external medium on the swimming pattern of Salmonella typhimurium.

The effect of replacement of ions in the extracellular medium on the swimming pattern of bacteria (Salmonella typhimurium) has been investigated. The replacement of chloride ion (Cl-) in the standard medium by methanesulfonate ion (MS-) or by propionate ion (Pr-) induced an increase in the tumbling frequency, or a decrease of the end-to-end distances of tracks. Replacement of MS- by Cl- resulted in transient depression of tumbling, and replacement of Pr- by Cl- resulted in immediate recovery of normal swimming. The replacement of cations was not very effective. The experimental data, including the dependence of the effect of replacement on the ion concentration, are consistent with the ideas that the tumbling frequency increases with depolarization of the bacterial membrane and that such anions as MS- and Pr- are more able to permeate the membrane than is Cl-.

Chlorides↗

Electronmicroscopic investigation of the flexibility of F-actin.

The contour lenghts and the end-to-end distances of a large number of F-actin filaments were measured in electronmicrographs. Preparation of F-actin for electron-microscopy was made at three different temperatures. The flexibility parameter or the elastic modulus for bending of F-actin was determined from the relation between the contour length and the end-to-end distance after statistical treatment. The value of the flexibility parameter obtained here showed good agreement with that obtained by the quasielastic light scattering at all temperatures examined. The flexibility of F-actin increased with raising temperature and with the binding of heavy meromyosin.

Actins↗

Dynamic characteristics of F-actin and thin filaments in vivo and in vitro.

Measurements of birefringence, ultraviolet dichorism and quasielastic light scattering were carried out on F-actin in solution and on the thin filaments of glycerinated myofibrils. The birefringence of the I-bands of myofibrils was of the same order of magnitude as that of F-actin or the F-actin-tropomyosin-troponin complex oriented in vitro at the same concentration. The ultraviolet dichroism spectrum of the I-bands was very similar to that of F-actin or the F-actin complex in vitro, which is due to orientation of bound ADP and tryptophan residues in F-actin. Quasielastic light scattering measurements, electronmicroscopic observations and the analyses of the electro-optic effect of the I-bands suggested approximately the same flexibility for F-actin in vitro and for the thin filaments in vivo. These optical measurements which were made under various conditions provide evidence for a conformational change induced by calcium ions in F-actin both in vivo and in vitro. This conformational change was found to be amplified by the interaction of F-actin with myosin. This is a brief review of our investigation on the dynamics of F-actin and the thin filament in vivo and in vitro by optical methods.

Actins↗

Effect of temperature on motility and chemotaxis of Escherichia coli.

The swimming velocity of Escherichia coli at various constant temperatures was found to increase with increasing temperature. The frequency of tumbling had a peak at 34 degrees C and was very low both at 20 and at 39 degrees C. The swimming tracks near the surface of a slide glass showed curves, and the curvature increased the temperature. When the temperature of a bacterial suspension was suddenly changed, a transient change of the tumbling frequency was observed. A temperature drop induced a temporary increase in the tumbling frequency, and a quick rise of temperature, on the other hand, resulted in a temporary suppression of the tumbling. These dynamic responses to sudden changes of temperature was not observed in the smoothly swimming nonchemotactic strains bearing the mutations cheA and cheC and also in a mutant with the metF mutation under a smooth swimming condition.

Chemotaxis↗

Effect of myosin on conformational changes of F-actin in thin filament in vivo induced by calcium ions.

The measurements of ultraviolet linear dichroism has been carried out on glycerinated muscle fibers of rabbit psoas and crab leg having various sarcomere lengths and the effect of interaction of the thin filament with myosin on the dichroism has been investigated under various conditions. The dichroism spectrum of the muscle fiber has a large positive peak at 285 nm (smaller absorption of light polarized perpendicular to the fiber axis) and a small negative peak at 297.5 nm. The negative peak at 297.5 nm, which comes from the dichroism of F-actin in the thin filament, became smaller in the presence of Ca2+ than in its absence. The positive peak at 285 nm, where the thick filament has main contribution, showed no appreciable change by Ca2+. The dichroism at 292.5 nm, where the thin filament has no contribution, showed no change either. Thus, the decrease of negative dichroism at 297.5 nm by Ca2+ indicates a conformational change in F-actin in the thin filament. With decreasing sarcomere length or increasing overlapping between thin and thick filaments, the dichroism decrease at 297.5 nm by Ca2+ increased, and attained a maximum at maximum overlapping. That is the conformational change of F-actin by Ca2+ was amplified by interaction with myosin. With further decrease of the sarcomere length, the dichroism decrease by Ca2+ decreased. In the absence of Ca2+, the addition of ATP or pyrophosphate induced a large change of transmittance and transmittance anisotropy, and also a large increase of birefringence at long wavelengths.

Actins↗