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T Iio

Publications and source records attributed to T Iio.

At least 55 records · Page 3Linked to original sources

Conformational change of troponin T induced by calcium binding to troponin C.

The skeletal muscle troponin complex, the troponin T subunit of which was labeled with 2-((4'-iodoacetamido)anilino)naphthalene-6-sulfonic acid, showed a fluorescence titration curve with a midpoint of around pCa 6.75. Addition of 2 mM MgCl2 had no effect on the fluorescence titration curve. Therefore, we conclude that Ca2+ binding to the low affinity Ca2+-binding sites of troponin C induces a conformational change of troponin T, but Ca2+ binding to the high affinity Ca2+-binding sites does not.

Animals↗

Fluorescence energy transfer measurements between the nucleotide binding site and Cys-373 in actin and their application to the kinetics of actin polymerization.

Intramonomer fluorescence energy transfer between the donor epsilon-ATP bound to the nucleotide-binding site and the acceptor 7-chloro-4-nitrobenzo-2-oxa-1,3-diazole bound to Cys-373 in G-actin was measured by steady-state fluorimetry. Assuming for the orientation factor its dynamic limit K2 = 2/3, the donor and acceptor distance in a G-actin molecule was calculated to be about 3 nm. The intermonomer energy transfer in F-actin occurring between the donor bound to an actin monomer and the acceptor bound to the nearest-neighbour actin monomer was also measured and the distance was calculated to be about 4 nm. The kinetics of the actin polymerization process was studied by following the decrease in fluorescence intensity upon addition of salts to G-actin solution. The initial velocity of the fluorescence intensity change was proportional to the square of the initial G-actin concentration. The temperature dependence of the velocity was proportional to the square of the initial G-actin concentration. The temperature dependence of the velocity was proportional to exp(-10/RT). These results indicated that the initial fluorescence intensity change corresponds to monomer-dimer transformation and its activation enthalpy was 10 kcal/mol.

4-Chloro-7-nitrobenzofurazan↗

Characterization of a cytosolic protein inhibiting lysosomal acid cholesteryl ester hydrolase.

An inhibitor of lysosomal acid cholesteryl ester hydrolase (Acid CEH), (EC 3.1.1.13) was found in the cytosolic fraction of rat liver and various other tissues. The extent of the inhibitory effect was dependent on the concentration of the cytosolic protein. The Acid CEH inhibitor was heat-labile, non-dialyzable, and its inhibitory activity significantly decreased by trypsin or chymotrypsin digestion, but not by lipase digestion. The inhibitor had no effect on the activity of cathepsin D, beta-glucuronidase and acid phosphatase, which are other enzymes found in lysosomes. The present findings suggest that the inhibitor may be involved in the regulation of the hydrolysis of cholesteryl esters in lipoproteins that have been transferred into the liver.

Animals↗

Static and kinetic studies on carp muscle parvalbumins.

Fluorescence titration and fluorescence stopped-flow studies were performed on carp muscle parvalbumin components 1, 2, 3, and 5 (the latter three components were modified with a SH-directed fluorescent reagent, dansyl-L-cysteine). Apparent binding constants (Kapp) of Ca2+ to these components decrease in the order of component 2 (Kapp = 2.8 +/- 0.9 X 10(8) M-1) greater than component 1 (Kapp = 1.25 +/- 0.25 X 10(8) M-1) greater than component 3 = component 5 (Kapp = 4.0 +/- 0.5 X 10(7) M-1) in 30 mM KCl, 50 mM Na-cacodylate-HCl, pH 7.0 at 20 degrees C. The rate constant of the conformational change of parvalbumin induced by Ca2+ binding or removal decreases in the order of component 2 greater than component 1 greater than component 5 greater than or equal to component 3; that is, component 2 undergoes the fastest conformational change and component 3 the slowest in response to the rapid free Ca2+ concentration ([Ca2+]) change in the protein solution. The fluorescence titration curves and [Ca2+]-dependences of the rate constants are analyzed by a simple two-state model, (partially unfolded state) k1 in equilibrium k2 (folded state). It is shown that the equilibrium constant K = k1/k2 depends on the second power of [Ca2+], the rate constant k1 on the first power of [Ca2+] and k2 on the inverse first power of [Ca2+], respectively.

Animals↗

Static and kinetic studies on rabbit skeletal muscle troponin.

Fluorescence titration curves of 2-[4'-iodoacetamido)anilino)naphthalene-6-sulfonic acid-labeled troponin (IAANS-labeled Tn) and troponin-1-anilinonaphthalene-8-sulfonic acid (Tn-ANS) complex indicated that the fluorescent moiety, IAANS or ANS, detects conformational change of troponin I (TnI) or Tn due to the Ca2+ binding or removal reaction with the low affinity Ca2+-binding sites of troponin C (TnC) component. A fluorescence stopped-flow study showed that the kinetic behavior of IAANS-labeled Tn reflects a change in state of the TnI component induced by the Ca2+ binding or removal reaction with the low affinity Ca2+-binding sites of TnC component. The state change of TnI induced by the Ca2+ binding was complete within the instrumental dead time. On the other hand, that induced by the Ca2+ removal had a rate constant of around 13 s-1. ANS, which is noncovalently bound to Tn, reflects the kinetic properties of both the TnI component and the low affinity Ca2+-binding region of TnC component. The fluorescence intensity change of ANS induced by Ca2+ binding to the low affinity Ca2+-binding sites of TnC was complete within the instrumental dead time, while that induced by the Ca2+ removal from the same sites was biphasic. The rate constants of the biphasic process were found to be 62 +/- 7 s-1 and 16 +/- 4 s-1. The former value corresponds to the rate constant of the Ca2+ removal reaction from the low affinity Ca2+-binding sites of TnC component, and the latter value to the rate constant observed in the case of IAANS-labeled Tn. Based on these experimental results and on the discussion in our previous paper (Iio, T. & Kondo, H. (1981) J. Biochem. 90, 163-175), we have refined the two-way information-transfer mechanism which we previously proposed in order to explain the biological function of Tn.

Actins↗

Fluorescence titration and fluorescence stopped-flow studies on skeletal muscle troponin labeled with fluorescent reagent.

Incorporation of skeletal muscle troponin C (TN-C) subunit into skeletal muscle troponin (TN) induces a large increase in the apparent binding constant of Ca2+ to the low affinity Ca2+-binding sites of TN-C (from 1 X 10(5) M-1 to 5.6 X 10(6) M-1 in the presence of 2 mM MgCl2), and a large decrease in the rate constant of the Ca2+ removal reaction from the low affinity Ca2+-binding sites of TN-C (from 230 s-1 to 37 s-1 in the presence of 2 mM MgCl2). On the other hand, no significant modification in the molecular kinetic mechanism of the local conformational change due to the Ca2+ binding or removal reaction with the high affinity Ca2+-binding sites of TN-C is observed as TN-C is incorporated into TN.

Animals↗

Fluorescence titration and fluorescence stopped-flow studies on skeletal troponin C labeled with fluorescent maleimide reagent or dansylaziridine.

Skeletal muscle troponin C (TN-C) labeled with N-(p-(2-benzimidazolyl)phenyl)-maleimide (BIPM) shows about 5% fluorescence increase and 82% fluorescence increase upon Ca2+ binding and Mg2+ binding to the high affinity Ca2+-binding sites (sites III and IV) of TN-C, respectively. TN-C labeled with N-(1-anilinonaphthyl-4)maleimide (ANM) shows about 26% fluorescence decrease and 22% fluorescence increase upon Ca2+ binding and Mg2+ binding to the high affinity Ca2+-binding sites, respectively. These findings indicate that environmental change around Cys-98, where the maleimide reagent bind, induced by Ca2+ binding to the high affinity Ca2+-binding sites is very different from that induced by Mg2+ binding to the same sites. These dye-protein conjugates do not show fluorescence intensity change upon Ca2+ binding to the low affinity Ca2+-binding sites (sites I and II). Dansylaziridine (DANZ)-labeled TN-C shows more than 100% fluorescence increase upon Ca2+ binding to the low affinity Ca2+-binding sites of TN-C. Hence, we can observe the kinetic processes which TN-C undergoes upon Ca2+ binding to or removal from the high affinity Ca2+-binding sites by following the fluorescence intensity change of ANM-labeled TN-C, respectively. THe kinetic processes of the fluorescence intensity change associated with the Ca2+ binding and removal reactions with the high affinty Ca2+-binding sites (rate constants, 3.7-157 s-1) are slower than the kinetic processes associated with the low affinity Ca2+-binding sites (rate constants, equal to or higher than 230 s-1) in the absence of MgCl2. In the presence of 2 mM MgCl2, a new slow phase (rate constant, 10-16 s-1) appears in the kinetic processes associated with the low affinity Ca2+-binding sites, in addition to the rapid phase which is already observed in the absence of MgCl2. Kinetic properties associated with the high affinity Ca2+-binding sites are not essentially altered by addition of 2 mM MgCl2 to the system, but ANM-labeled TN-C shows lower rate constants (0.67-26 s-1).

Animals↗

Comparison of the kinetic properties of troponin-C and dansylaziridine-labeled troponin-C1.

Comparison of the kinetic properties of troponin-C and dansylaziridine-labeled troponin-C revealed that the calcium ion binding and removal reactions with the low affinity Ca2+-binding sites (sites I and II) and the resultant local conformational change are rapid processes, and that the calcium ion binding and removal reactions with the high affinity Ca2+-binding sites (sites III and IV) are also rapid, whereas the resultant local conformational change is a slow process. It is also shown in this work that the latter processes are independent of the former processes.

Animals↗

Fluorescence stopped-flow study of N-(7-dimethylamino-4-methyl-3-coumarinyl)-maleimide-labeled troponin C.

Static fluorescence titration and fluorescence stopped-flow kinetic experiments o N-(7-dimethylamino-4-methyl-3-coumarinyl)-maleimide-labeled troponin C showed that the molecular kinetic mechanism of the local conformational change induced by the rapid Ca2+ binding and removal reactions with the high affinity Ca2+-binding sites (sites III and IV) can be explained by the following scheme: [Formula: see text]. Numerical constants in this scheme were determined in this work.

Animals↗

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↗

A fluorescence stopped-flow study on troponin labeled with N-ethyl maleimide and N-(p-(2-benzimidazolyl)phenyl) maleimide.

The kinetics of the conformational change of the troponin-C (TN-C) subunit in N-(p-(2-benzimidazolyl)phenyl) maleimide (BIPM)-N-ethyl maleimide (NEM)-labeled troponin induced by calcium binding or removal were studied with the fluorescence stopped-flow method. The kinetic process of the conformational change was biphasic, the rate constants of the two phases were determined as a function of the free calcium ion concentration of the protein solution. The kinetic behaviour of the conformational change of TN-C in BIPM-NEM-labeled troponin was explained by a simple molecular kinetic mechanism: (Formula: see text) This molecular kinetic mechanism is different from that of the isolated TN-C which we found in the previous work (1). That is, formation of a complex of TN-C with troponin-I (TN-I) and troponin-T (TN-T) modifies the molecular kinetic mechanism of the conformational change of TN-C.

Animals↗