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Y Ilan

Publications and source records attributed to Y Ilan.

35 records · Page 2Linked to original sources

Partitioning of electrostatic and conformational contributions in the redox reactions of modified cytochromes c.

The reduction of acetylated, fully succinylated and dicarboxymethyl horse cytochromes c by the radicals CH3CH(OH), CO2.-, O2.-, and e-aq' and the oxidation of the reduced cytochrome c derivatives by Fe(CN)3-6 were studied using the pulse radiolysis technique. Many of the reactions were also examined as a function of ionic strength. By obtaining rate constants for the reactions of differently charged small molecules redox agents with the differently charged cytochrome c derivatives at both zero ionic strength and infinite ionic strength, electrostatic and conformational contributions to the electron transfer mechanism were effectively partioned from each other in some cases. In regard to cytochrome c electron transfer mechanism, the results, especially those for which conformational influences predominate, are supportive of the electron being transferred in the heme edge region.

Acetylation

Intramolecular electron transfer and binding constants in iron hexacyanide-cytochrome c complexes as studied by pulse radiolysis.

Internal oxidation and reduction rates of horse cytochrome c in the complexes CII . Fe(III)(CN)6(3)- and CIII . Fe(II)(CN)6(4)-, are 4.6 . 10(4)s-1 and 3.3 . 10(2)s-1, respectively. The binding site of the iron hexacyanide ions on either CII or CIII are kinetically almost indistinguishable; binding constants range from 0.87 . 10(3) to 2 . 10(3)M-1. The present pulse radiolytic kinetic data is compared with that from NMR, T-jump and equilibrium dialysis studies.

Animals

Do copper ions influence the reduction of ferricytochrome C by O-2?

Recently, it was suggested that the measured rate of reduction of ferricytochrome C by O-2 below pH 8, was too high in the presence of high concentrations of formate (Koppenol, W.H., Van Buuren, K.J.H., Butler J. and Braams, R. (1976) Biochim. Biophys. Acta 449, 157-168). The high values were attributed to the presence of impurities of copper, which compete for O-2. This assumption is consistent with either a decrease in the reduction yield of ferricytochrome C in the presence of copper, or with a very fast reaction of Cu(I) with ferricytochrome C. It was previously shown by us and by others that the reduction yield of ferricytochrome C by O-2 IS 100%. We measured the rate of reduction of ferricytochrome C by Cu(I), and found that this reaction is slow: k = (1.5 +/- 0.5) . 10(3) M-1 . s-1. Therefore, our results rule out the possibility that below pH 8 copper impurities affect the measured rate constant of the reduction of ferricytochrome C by O-2.

Copper

H/2H isotope effect in redox reactions of cytochrome c.

The rate of reaction of ferro- and ferricytochrome c (C(II) and C(III) with ferri- and ferrocyanide and of C(III) with 02- and CO2- was determined in H2O and in 2H2O in the temperature range 5-35 degrees C. No isotope effect was evident in any of the reductions of C(III); the apparent energy of activation was identical in H2O and 2H2O. An isotope effect with kH2O/k2H2O = 1.25 to 1.85, depending on pH for instance was observed in the oxidation of C(II), in the slow phase of oxidation which involves conformational changes. An interpretation (supported by evidence from previous work) involving water molecules in the close vicinity of the reaction site on the protein is discussed.

Carbon Dioxide

Reactions of the ferri-ferrocytochrome-c system with superoxide/oxygen and CO2-/CO2 studied by fast pulse radiolysis.

The reduction of ferricytochrome c by O2- and CO2- was studied in the pH range 6.6-9.2 and Arrhenius as well as Eyring parameters were derived from the rate constants and their temperature dependence. Ionic effects on the rate indicate that the redox process proceeds through a multiply-positively charged interaction site on cytochrome c. It is shown that the reaction with O2- (and correspondingly with O2 of ferrocytochrome c) is by a factor of approx. 10(3) slower than warranted by factors such as redox potential. Evidence is adduced to support the view that this slowness is connected with the role of water in the interaction between O2-/O2 and ferri-ferrocytochrome c in the positively charged interaction site on cytochrome c in which water molecules are specifically involved in maintaining the local structure of cytochrome c and participate in the process of electron equivalent transfer.

Binding Sites

The study of 1-electron equivalent oxidation-reduction reactions by fast pulse generation of reagents. Cytochrome c/ferri-ferrocyanide system.

The method of pulse radiolysis was used to generate reagents in situ in times (500 ns to 1.5 mus) short compared with the rates of the observed biochemical processes. This "instant" mixing technique is compared with rapid stopped flow measurements (limited in rates and concentrations) and T-jump measurements (limited to relaxation in the neighborhood of equilibrium) for the ferro-ferricytochrome c (C(II)-C(III))/ferro-ferricyanide (FCN(II)-FCN(III)) system. The reagents generated in situ were C(II) or FCN(III). Kinetically indistinguishable binding sites exist on C(II) and C(III) for hexacyanide anions. Reductive electron transfer to the protein proceeds within the FCN(II)-C(III) complex, with a rate of 400 s-1. The binding of FCN(II) on C(II) slows down the oxidation of C(II) by FCN(III). The sites of interaction on C(II) or C(III) with FCN(III) show effective charges of approximately +2. The association constant per binding site derived from the kinetics of electron transfer is greater than or equal to 10(4) M-1 for FCN(II)-C(II) and less than or equal to 10(4) M-1 for FCN(III)-C(III). Specific clusters of amino acids in the model of cytochrome C are suggested as binding sites. The oxidation-reduction reactions of FCN appear to involve electron equivalent transfer to and from such somewhat remote binding sites on the protein. Anions such as phosphate or sulphate also bind to these, less strongly than hexacyanides. In the presence of perchlorate the kinetics show the resolution of the pK=9.3 of C(III) into two parts: (a) optical changes at 695 nm due to ligand interchange on the heme-iron, unaffected by perchlorate and (b), a kinetic change leading to biphasic oxidation of C(II), with pK=7.4. This is attributed to the effect of perchlorate on water structure in the close environment of the binding sites. The high rate of oxidation of relaxed C(II) by FCN(III), (2 X 10(8) M-1 S-1 at mu=0) is not in agreement with an outer sphere Marcus mechanism. Nonrelaxed C(II) having a structure closer to C(III) transfers electron to FCN(III) even faster (k=3 X 10(9) M-1 S-1 at mu=0).

Anions

Variable efficacy of interferon-alpha treatment on growth of human hepatoma cell lines in vitro.

Three human hepatoma cell lines, PLC/PRF/5, Mahlavu and Sk-Hep 1, two of which contain integrated HBV DNA, were grown in culture and treated with human alpha-IFN for up to 14 days. IFN treatment caused a varying suppression of cell growth of the three hepatoma cell lines. While doubling time and cloning efficiency were significantly reduced for all three hepatoma cell lines tested, 3[H]thymidine incorporation was markedly suppressed, in a dose-dependent fashion, only in treated PLC/PRF/5 cells but not in Sk-Hep 1 and Mahlavu cells. The inhibiting effect of interferon treatment on growth of PLC/PRF/5 cells in vitro was neutralized by antibodies to human IFN. IFN treatment caused a significant suppression of HBsAg and alpha FP secretion by PLC/PRF/5 hepatoma cells. This effect, while constant throughout the observation period for HBsAg, was cumulative for alpha FP secretion. Following discontinuation of treatment, suppression of PLC/PRF/5 hepatoma cell growth was rapidly reversed, and HBsAg and alpha FP secretion returned to their pretreatment levels. These experiments suggest that human alpha-IFN suppresses the growth of some human hepatoma cells in culture but that this effect is dependent on the continuous presence of IFN in the growth medium. Finally, the inhibitory effects of IFN on cell growth differed for the various hepatoma cell lines tested.

Animals