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K Mihashi

Publications and source records attributed to K Mihashi.

At least 55 records · Page 3Linked to original sources

Pulse-fluorometry study on actin and heavy meromyosin using F-actin labelled with N-(1-pyrene)maleimide.

The single-photoelectron counting technique was used for measurement of the fluorescence decay kinetics of N-(1-pyrene)maleimide conjugated to the fast reactive cysteine of actin. The fluorescence decay curve of the labelled G-actin could not be described by a single-exponential function but by a double-exponential function. Polymerization of actin was accompanied by significant changes in the decay parameters of the two decay components. We found that the ionic strength, which plays an important role in the G-F equilibrium, scarcely affected these parameters provided that the labelled actin exists in the monomeric state. Thus it is suggested that the conformational change of actin protomer occurs at the time of association. When heavy meromyosin was added to the labelled F-actin, the decay parameter changed monotonically on increasing saturation of binding of heavy meromyosin and it levelled-off around a ratio of heavy meromyosin:actin of 0.5 mol/mol. Decay parameters under the influence of heavy meromyosin had values intermediate between those observed for the labelled G-actin and for the labelled F-actin. Therefore, it is suggested that binding of heavy meromyosin to F-actin alters the conformation of actin protomer towards that similar to G-actin.

Actins↗

Kinetics of the conformational change of troponin-C induced by magnesium-binding or removal.

The kinetics of the conformation change of troponin-C (TN-C) induced by magnesium-binding or removal were studied in the absence of calcium ion by measuring the fluorescence intensity change of BIPM bound to TN-C by stopped-flow spectrofluorometry. The kinetic process of the conformational change was biphasic. The rate constants of the two phases were determined as a function of free magnesium ion concentration ([Mg]) of the solution. The [Mg]-dependence of the rate constants was explained by a simple molecular kinetic mechanism: (formula: see text) The dissociation constant of magnesium bound to TN-C was also determined to be 1 x 10(-3) M in the kinetic study.

Animals↗

Absorption, fluorescence, and linear dichroism spectra of fluorescein mercuric acetate (FMA) bound to F-actin. Two kinds of effects of divalent cations.

Two kinds of F-actin were prepared; one binds magnesium at the unique divalent cation binding site of actin protomer and the other binds calcium at this site. They were designated as F(Mg)-actin and F(Ca)-actin, respectively. The binding of fluorescein mercuric acetate (FMA) to F(Mg)-actin and F(Ca)-actin was studied spectroscopically. The absorption and fluorescence spectra of bound FMA differed slightly but distinctly between F(Mg)-actin and F(Ca)-actin. Moreover, FMA bound to F(Mg)-actin showed linear dichroism in the presence of 2 mM MgCl2 (or 2mM CaCl2) in the solvent, while the dichroism was abolished by the removal of divalent cations from the solvent. In contrast, FMA bound to F(Ca)-actin did not show any appreciable linear dichroism irrespective of the presence (or absence) of divalent cations in the solvent. These results suggest that the structure of F-actin is characteristically regulated by divalent cations in a dual mode.

Actins↗

Fluorescence energy transfer between epsilon-ATP at the nucleotide binding site and N-(4-dimethylamino-3,5-dinitrophenyl)-maleimide at Cys-373 of G-actin.

The method of fluorescence energy transfer is used to measure the distance from the nucleotide binding site to Cys-373 of G-actin. The fluorescent ATP analogue 1-N6-ethenoadenosine 5'-triphosphate was used as donor and N-(4-dimethylamino-3,5-dinitrophenyl)-maleimide was used as acceptor. From the measurements of the efficiency of fluorescence energy transfer by both static and time resolved fluorometries, the distance between nucleotide binding site and Cys-373 residue of G-actin was calculated to be about 30 A.

Actins↗

Kinetics of conformational change of troponin-C induced by binding or removal of calcium ion.

The kinetics of conformational change of troponin-C (TN-C) induced by binding or removal of calcium ion were studied in the presence or absence of magnesium ion by measuring the fluorescence of tyrosyl residues by stopped-flow spectrofluorometry. The result was analyzed in terms of first-order kinetics. Two phases were observed both in pCa-up and in pCa-down experiments. The dependence of the rate constants on pCa was explained by a simple mechanism as follows; (see article). The dissociation constants of calcium bound to TN-C, K and K', calculated from the experimentally determined rate constants were K = 3.16 X 10(-7) M, K' = 1.58 X 10(-6) M in the absence of magnesium ion, and K = K' = 1 X 10(-6) M in the presence of 2 mM MgCl2.

Animals↗

Kinetics of conformational change of troponin-C induced by proton binding or removal in the absence of calcium ions.

The kinetics of the conformational change of troponin-C induced by binding or removal of protons was studied by a stopped-flow pH-jump spectrofluorometric method. In the pH-down experiment (to investigate the kinetics of conformational change from the deprotonated state to the protonated state), a single first-order reaction with a rate constant and amplitude of 1.75-2.4 sec-1 and around 10% respectively, was observed. On the other hand, two first-order reactions with rate constants of 0.84-1.6 sec-1 and 0.08-0.4 sec-1 were observed in the pH-up experiment, the total amplitudes of these reactions being around 10-20%. The pH dependences of the rate constants of these reactions were analyzed in terms of a three-species mechanism.

Animals↗

Fluorescence study of N-(3-pyrene)maleimide conjugated to rabbit skeletal F-actin and plasmodium actin polymers.

A fluorescent probe N-(3-pyrene)maleimide was conjugated to rabbit skeletal F-actin at the site of most reactive sulfhydryl group (Cys-373). Its fluorescence anisotropy decay showed a single correlation time of 560 ns at 25 degrees C, which is in a very good agreement with the correlation time of the dansyl-L-cysteine group conjugated to the same site of F-actin reported very recently [Wahl, Ph., Mihashi, K, and Auchet, J-C. (1975) FEBS Lett. 8, 164-167]. Actin from plasmodia of myxomycates, Physarum polycepharum, was also conjugated with N-(3-pyrene) maleimide and the fluorescence anisotropy was compared with rabbit skeletal F-actin using the classical steady excitation method. It was found that the internal mobility of the magnesium polymer of plasmodium actin is remarkably larger than both plasmodium F-actin and rabbit skeletal F-actin.

Actins↗

Fluorescence and flow dichroism of F-actin-epsilon-ADP; the orientation of the admine plane relative to the long axis of F-actin.

The excitation polarization spectrum of epsilon-ADP bound to F-actin shows that two absorption dipoles at 260 nm and 340 nm are oriented in different directions relative to the emission dipole. On the other hand, the linear dichroism of F-actin-epsilon-ADP gives that the dichroic ratio of the bound epsilon-ADP is approximately constant (about-0.5) in the wavelength region form 250 to 350nm. Furthermore, the fluorescence polarization of epsilon-ADP bound to F-actin which is oriented in the field of flow shows that the emission dipole is nearly perpendicular to the long axis of F-actin. From these observations we conclude that the adenine plane of the bound nucleotide is almost perpendicular to the long axis of F-actin.

Actins↗

Kinetics of conformational change of troponin C induced by calcium.

The kinetics of conformational change of troponin C (TN-C) induced by binding and removal of calcium ions were studied by measuring the fluorescence of tyrosine by stopped-flow spectrofluorometry. When the concentration of free calcium ions in the solution [Ca2+] was increased rapidly from 4X10(-9)M to 1X10(-3)M at neutral pH, a first-order reaction with a rate constant of 13.7 sec-1, which was preceded by a much faster reaction, was observed. In contrast, when [Ca2+] was reduced from 2X10(-3)M to 4.4X10(-8)M, two first-order reactions with rate constants of 7.4 and 0.78 sec-1, preceded by a much faster reaction, were observed.

Animals↗

Nanosecond pulse fluorometry in polarized light of dansyl-L-cysteine linked to a unique SH group of F-actin; the influence of regulatory proteins and myosin moiety.

The order of magnitude of the correlation time, which characterizes the dansyl cysteine residue linked to F-actin is ten times greater than the correlation time of the G-actin monomer [1]. Still it is much smaller than the correlation times of the F-actin polymer as a whole. The dansyl chromophore reveals that the C terminal end of the actin peptide chain, is mobile. As Ebashi and his co-workers have shown (13), Ca2+ triggers muscular contraction by acting on F-actin through the mediation of the regulatory proteins troponin and tropomyosin. By using spin label technique, Tonomura et al. [14] found that Ca2+ induces a conformational change on the troponin, tropomyosin actin complex. The quasi elastic scattering of laser light measurement of Fujime and Ishiwata [15] showed that troponin-tropomyosin F-actin has a rotational correlation time in the millisecond range which characterizes the flexibility of this complex; Ca2+ induces an increase of this flexibility. The present pulse fluorometry study shows an increase of mobility of the fluorescent probe induced by Ca2+. It seems difficult to correlate the results of the two kinds of measurements as long as we do not know the exact nature of the fluorescent kinetics unit.

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