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H Buc

Publications and source records attributed to H Buc.

At least 109 records · Page 6Linked to original sources

Two Escherichia coli fructose-6-phosphate kinases. Preparative purification, oligomeric structure and immunological studies.

Two isoenzymes of fructose-6-phosphate kinase (ATP: D-fructose-6-phosphate 1-phosphotransferase, EC 2.7.1.11) are present in Escherichia coli K12. One isoenzyme is allosterically inhibited by phosphoenolpyruvate and activated by nucleoside diphosphates, and is a tetramer composed of four subunits of molecular weight 35 000. A simple method for the purification of this enzyme is reported. Equilibrium dialysis indicates that there are four ATP sites and four GDP sites per tetramer. The second isoenzyme is present in low quantity in wild type bacteria. This enzyme is devoid of allosteric properties. A complete method of purification is described. Determination of its molecular weight under native and denaturing conditions indicates that this protein is a dimer composed of two subunits of molecular weight 36 000. Antisera have been produced against both isoenzymes. The antiserum against one isoenzyme does not cross-react with the other. Discrepancies between our results and those of other workers are discussed.

Allosteric Regulation↗

Comparative study of the effect of 5' AMP and its analogs on rabbit glycogen phosphorylase b isoenzymes.

A comparative study of the effect of AMP and other nucleotides on the different rabbit glycogen phosphorylase b isoenzymes has been made: muscle, brain, liver isoenzymes, and the hybrid species between muscle and brain isoenzyme. We have studied either the direct kinetic effect of the different nucleotides or the action of the nucleotides on the b to a conversion rate. Muscle, brain, and muscle--brain isoenzymes are very strongly and very specifically activated by AMP and its analogs, whereas liver isoenzyme is not very sensitive to the nucleotides. However, muscle, brain and muscle--brain isoenzymes show slight but very interesting differences in their kinetic properties. These differences allow some speculations about the conformational state of these different isoenzymes.

Adenosine Monophosphate↗

Conformations of purine ribosyl 5'-nucleotides bound to glycogen phosphorylase b. A proton T2 relaxation time investigation.

The conformation of 5'-nucleotides in the active site of glycogen phosphorylase b has been deduced from linewidth measurements of protons H-1', H-8 and H-2. It is shown by selective deuteration of the purine ring in position 8 that the orientation of the base is anti in the case of strong activators like AMP and syn in that of weak activators like IMP. The orientation correlation time of the nucleotides in the active site is nearly that of the enzyme, i.e. 160 ns at 21 degrees C.

Adenosine Monophosphate↗

[A general method for the determination of the conformation of nucleotides bound to an enzyme site. Interaction between glycogen phsophorylase b and nucleoside-5'-monophosphates].

The conformation of 5' nucleotides in the active site of glycogen phosphorylase b has been deduced from T2 relaxation time of protons H1, H8 and H2. It is shown by deuterium substitution of the purine ring in position 8 that the orientation of the base is anti in the case of strong activators like adenosine 5'-monophosphate, and syn in that of weak activators like inosine 5'-monophosphate.

Adenosine Monophosphate↗

AMP analogs: their function in the activation of glycogen phosphorylase b.

A series of AMP analogs has been selected in order to better understand the structural requirements (a) for the efficient binding of the activator molecule at the correct site on phosphorylase b from rabbit skeletal muscle and (b) for the activation which is observed. Two types of activation are known, according to Black and Wang [J. Biol. Chem. 243, 5892-5898 (1968)]: either a cooperative response with respect to the activator concentration (like the one which is obtained for AMP itself) or a non-cooperative response observed in the case of IMP. It is shown that the 5'-phosphate moiety is absolutely required for the analog to bind at the correct site (adenine or adenosine bind at another enzymic site), and that the free enthalpy, delta G, corresponding to the association process varies in a complex manner with respect to the substitution of the different positions of the AMP molecule. Moreover, the differences delta G (analog) - delta G (AMP) = delta G obtained for two types of substitution separately do not add up to the same energy difference as the one obtained when the two substitutions are made simultaneously on the AMP molecule. It appears that all the mononucleotides which have been tested up to now may be divided into two classes. Class I (AMP class) is characterized, apart from a strong activation, by the following features: (a) one molecule of analog expels two molecules of bound glucose 6-phosphate as it binds on the enzyme; (b) bound analog protects slowly one crucial cysteinyl residue against attack by 5,5'-dithio-bis(2-nitrobenzoic acid) at 4 degrees C; (c) association of two molecules of dimer is strengthened at 4 degrees C in the presence of the analog. Class II (IMP class) is associated with a weak activation and with the following set of properties: (a) a single molecule of bound glucose 6-phosphate is released as the first molecule of analog binds on the dimer; (b) two slowly reacting cysteinyl residues per subunit are immediately protected against 5,5'-dithio-bis(2-nitrobenzoic acid) by the binding of the analog at 4 degrees C; (c) the analog dissociates the low amount of tetramer which is present at 4 degrees C in the absence of AMP into two molecules of dimer. These results are discussed according to a plausible scheme of transconformations taking place in glycogen phosphorylase b, a model which has been derived earlier by relaxation studies.

Adenine↗

A proton-relaxation-time study of the conformation of some purine and pyrimidine 5'-nucleotides in aqueous solution.

The measurement of proton relaxation time T1 in a series of purine and pyrimidine 5'-nucleotides has been carried out to investigate their conformation in dilute neutral aqueous solutions. The interpretation of relaxation data has been performed with the help of computer calculations taking into account the different conformers of the ribose ring and of the exocyclic group. It has been found that all nucleotides under study show nearly the same preferential orientations of the base defined by gamma0 = 70 degrees +/- 10 degrees in the syn range. A more elaborate treatment, using an angular distribution derived from calculated potentials on 5" -GMP gives theoretical relaxation times in close agreement with experimental ones.

Binding Sites↗

1,N6-etheno-AMP and 1,N6-etheno-2'-deoxy-AMP as probes of the activator site of glycogen phosphorylase from rabbit skeletal muscle.

Both 1,N6-etheno-AMP and 1,N6-etheno-2'-deoxy-AMP bind at the AMP site of phosphorylase b (1,4-alpha-D-glucan:orthophosphate alpha-glucosyltransferase, EC 2.4.1.1). Etheno-AMP induces the same activation as AMP, about 30-fold higher than the activation induced by etheno-dAMP. The fluorescence of etheno-AMP and etheno-dAMP is associated with the base moiety; therefore, when free in solution, the two derivatives have identical fluorescence properties. However, when bound to phosphorylase, the fluorescence of etheno-AMP is quenched more efficiently than the fluorescence of etheno-dAMP. This difference between the fluorescence properties of the bound nucleotides suggests that a modification in the ribose ring affects the position of the adenine in the AMP site of phosphorylase b. The observed quenching may be due to a stacking interaction between an aromatic residue and the base moiety of the bound nucleotide.

Adenosine Monophosphate↗

Regulation of the amount and of the activity of phosphofructokinases and pyruvate kinases in Escherichia coli.

Two isozymes of fructose-6-phosphate kinase and two isozymes of pyruvate kinase have been detected in Escherichia coli under a wide variety of growth conditions. Their kinetic behavior has been characteriized with respect to different effectors and substrates. The conclusions reached on one hand by Malcovati and Kornberg (Biochim. Biophys. Acta (1969) 178, 420-423), on the other hand by Fraenkel, Kotlarz and Buc (J. Biol. Chem. (1973) 248, 4865-4866) have been found to be true in aerobiosis as well as in anaerobiosis. The biosynthesis of the four proteins is sensitive to the nature of the carbon sources as well as to the shift from aerobic to anaerobic conditions. Kinetics of depression after a shift to anaerobiosis have been followed and found to be of the order of the doubling time.

Aerobiosis↗