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T Iio

Publications and source records attributed to T Iio.

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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↗

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↗

Intracellular distribution of alpha-fetoprotein and albumin messenger RNAs in developing mouse liver.

Intracellular distribution of active mRNAs for alpha-fetoprotein (alphaFP) and albumin in fetal and adult mouse liver was studied. Livers were fractionated into nucleus and cytoplasm. The latter was further fractionated by sucrose density-gradient centrifugation into four subfractions, the top fraction containing soluble components, the 1.0 M sucrose layer containing primarily 80S ribosomes, the 1.5 M sucrose layer containing light polysomes and the pellets containing heavy polysomes. RNA was extracted from each fraction and its ability to direct the synthesis of alphaFP and albumin was determined in a mouse sarcoma 180 cell-free system. Distribution of alphaFP and albumin mRNAs in fetal mouse liver was similar; 2% in the nucleus, 98% in the cytoplasm, of which more than 90% was found in the polysome fractions. The results suggest that alphaFP and albumin mRNAs, once formed, are quickly and efficiently utilized for protein synthesis. The major proportion of albumin mRNA in adult mouse liver was also found to be associated with polysomes. However, the amount of translatable alphaFP mRNA was low in all subcellular fractions examined, suggesting that transcription or processing of alphaFP mRNA is defective in adult mouse liver.

Aging↗

Kinetic investigation of unfolding and partial refolding of a crab satellite (dA-dT)n.

Crab (dA-dT)n was isolated from the testes of Cancer borealis by a procedure involving separation of DNA and segregation of the satellite fraction by Hg2+ binding/Cs2SO4 density gradient ultracentrifugation. The titration of crab (dA-dT)n samples at 10 degrees indicated a sharp absorbance change at pH 11.98 in agreement with the pHm value observed for synthetic poly(dA-dT) under identical conditions. The reversal of the titration, however, resulted only in about 50% recovery of the original absorbance (at 260 nm) in marked contrast to the complete reversibility of the synthetic material. pH-jump experiments were carried out for the purpose of characterizing the rates and mechanisms of conformational transitions brought about by changes in the solution environment. It was found that the disintegration of the putative native structure of crab (dA-dT)n starts with a very fast reaction (occurring within the 6-msec deadtime of the instrument and comprising 65% of the total absorbance change) and it is completed via a slower first-order reaction (k = 66 sec minus 1). It is postulated that the first process is due to the rapid untwisting of end regions and, perhaps, some short hairpin-like helical branches present on the macromolecules. The second reaction is believed to be the end-to-end type unwinding of the double-helical backbone of crab (dA-dT)n. In the presence of low concentration (3 mug/ml) of Hg2+ ions the overall rate of disintegration process decreased drastically. pH jumps from pH values above pHm to values below were used to study the rates of absorbance changes corresponding to the refolding of the strands of denatured crab (DA-dT)n. A concentration independent process consisting of two phases was observed. The first phase was a gradual nonexponential process spanning the first second of the reaction, and the other, a very slow first-order process characterized by the rate constant value of 0.053 sec minus 1. It is proposed that the first part of the process (involving about 24% of nucleotide residues) is an intramolecular formation of helical hairpins (frequently interrupted by mismatching bases) and the second part is a manifestation of some association of the extant unpaired bases during the folding of the branched structure. Refolded crab (dA-dT)n samples when subjected again to pH greater than pHm in the stopped-flow apparatus displayed not the disintegration pattern of the native crab (dA-dT)n but rather that of synthetic poly(dA-dT. The marked facility of crab (dA-dT)n macromolecules for rapid conformational transitions induced by slight changes in the solution environment might be relevant to the biological function of this DNA.

Animals↗