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Magnesium-dependent adenosine triphosphatase, purified from sheep kidney medulla using digitonin, has been characterized in a series of kinetic and magnetic resonance studies. Kinetic studies of divalent metal activation using either Mg2+ or Mn2+ indicate a biphasic response to divalent cations. Apparent Km values of 23 μm for free Mg2+ and 3.3 μm for free Mn2+ are obtained at low levels of added metal, while Km values of 0.50 mm for free Mg2+ and 0.43 mm for free Mn2+ are obtained at much higher levels of divalent cations. In all cases the kinetic data indicate that the binding of divalent metals is independent of the substrate, ATP. Kinetic studies of the substrate requirements of the Mg2+-ATPase also yield biphasic Lineweaver-Burk plots. At low ATP concentrations, kinetic studies yield apparent Km values for free ATP of 6.0 and 1.4 μm with Mg2+ and Mn2+, respectively, as the activating divalent metals. At much higher levels of ATP the response of the enzyme to ATP changes so that Km values for free ATP of 8.0 and 2.0 mm are obtained for Mg2+ and Mn2+, respectively. In both cases, however, the binding of ATP is independent of added metal. ADP inhibits the Mg2+-ATPase and the kinetic data indicate that ADP competes with ATP at both the high and low affinity sites. Dixon plots of the data are consistent with competitive inhibition at both ATP sites, with Ki values of 10.5 μm and 4.5 mm. Electron paramagnetic resonance and water proton relaxation rate studies show that the enzyme binds 1 g ion of Mn2+ per 469,000 g of protein. The Mn2+ binding studies yield a KD for Mn2+ at the single high affinity site of 2 μm, in good agreement with the kinetically determined activator constant for Mn2+ at low Mn2+ levels. Moreover, the EPR binding studies also indicate the existence of 34 weak sites for Mn2+ per single high affinity Mn2+ site. The KD for Mn2+ at these sites is 0.55 mm, in good agreement with the kinetic activator constant for Mn2+ of 0.43 mm, consistent with additional activation of the enzyme by the large number of weaker metal binding sites. The enhancement of water proton relaxation by Mn2+ in the presence of the enzyme is also consistent with the tight binding of a single Mn2+ ion per 469,000 Mr protein and the weaker binding of a large number of divalent metal ions. Analysis of the data yields a value for the enhancement for bound Mn2+ at the single tight site, ?b, of 5 and an enhancement at the 34 weak sites of 11. The frequency dependence of water proton relaxation by Mn2+ at the single tight site yields a dipolar correlation time (constant from 8–60 MHz) of 3.18 × 10?9 s. The kinetics and metal binding studies, together with the effect of temperature on ATPase activity at high and low levels of ATP, are consistent with the existence in this preparation of a single Mg2+-ATPase, with high and low affinity sites for divalent metals and for ATP. Observations of both high and low affinities for ATP have been made with two other purified ATPases. The similarities of these systems to the Mg2+-ATPase described here are discussed.  相似文献   

3.
Metal ion and substrate binding to carbamate kinase from Streptococcus faecalis was studied by nuclear magnetic resonance (NMR) and electron paramagnetic resonance using Mn2+ as the paramagnetic probe. The enzyme binds Mn2+ weakly (KD = 0.45 ± 0.05 mm) with a stoichiometry of one per two subunits. However, in the presence of nucleotides, tighter binding of Mn2+ was observed with KD = 44 ± 4 μm in the presence of ADP and KD = 23 ± 4 μm with ATP present. Proton relaxation rate enhancement studies were conducted on water molecules interacting with ternary enzyme-Mn2+-nucleotide and binary enzyme-Mn2+ complexes. Mn2+ bound to carbamate kinase enhances the proton relaxation rate of water giving a binary enhancement value of ?b = 9.3 ± 0.4. When enzyme-Mn2+ was titrated with ADP or ATP, a bell-shaped titration curve was obtained typical of many other enzyme-Mn2+-nucleotide ternary complexes. Computer fits to the titration data gave ternary enhancement values of ?tADP = 14 ± 1 and ?tATP = 19 ± 1. The dissociation constants for Mn-ADP and Mn-ATP binding to carbamate kinase were also obtained from these data analyses and are K1 = 2.5 ± 0.5 μm and K1 = 50 ± 8 μm, respectively. Therefore, these data demonstrate the formation of a ternary enzyme-metal-nucleotide bridge complex at the nucleotide substrate site of carbamate kinase. Distance measurements were conducted by NMR techniques with 13C-enriched carbamate and demonstrate that carbamate is 4–8 Å from enzyme-bound Mn2+. Thus carbamate binds near the metal-nucleotide substrate site of carbamate kinase.  相似文献   

4.
Both uncomplexed subunits of the anthranilate synthetase-phosphoribosyltransferase enzyme complex from Salmonella typhimurium have an absolute requirement for divalent metal ions which can be satisfied by Mg2+, Mn2+, or Co2+. The metal ion kinetics for uncomplexed anthranilate synthetase give biphasic double-reciprocal plots and higher apparent Km values than those for anthranilate synthetase in the enzyme complex. In contrast, the apparent Km values for phosphoribosyltransferase are the same whether the enzyme is uncomplexed or complexed with anthranilate synthetase. This suggests that the metal ion sites on anthranilate synthetase, but not those on phosphoribosyltransferase, are altered upon formation of the enzyme complex. These results and the results of studies reported by others, suggest that complex formation between anthranilate synthetase and phosphoribosyltransferase leads to marked alterations at the active site of the former, but not the latter enzyme. Uncomplexed anthranilate synthetase can be stoichiometrically labeled with Co(III) under conditions which lead to inactivation of 75% of its activity. A comparison of the effects of anthranilate and tryptophan on phosphoribosyltransferase activity in the uncomplexed and complexed forms shows that anthranilate, but not tryptophan, inhibits the uncomplexed enzyme. The complexed phosphoribosyltransferase shows substrate inhibition by anthranilate binding to the phosphoribosyltransferase subunits. In contrast, in a tryptophan-hypersensitive variant complex, anthranilate inhibits phosphoribosyltransferase activity by acting on the anthranilate synthetase subunits. The data are interpreted to mean that there are two classes of binding sites for anthranilate, one on each type of subunit, which may participate in the regulation of anthranilate synthetase and phosphoribosyltransferase under different conditions.  相似文献   

5.
The binding of Mn2+, Ca2+, and rare earth ions to apoconcanavalin A has been studied by water proton relaxation enhancement, electron paramagnetic resonance spectroscopy, and fluorescence spectroscopy. An electron paramagnetic resonance and water proton relaxation rate study of the titration of apoconcanavalin A with Mn2+ gives evidence of two equivalent binding sites per monomer with KD = 50 μm ± 4 μm. When a similar Mn2+ titration of apoconcanavalin A is performed in the presence of Ca2+ ion, very little free Mn2+ is detected by electron paramagnetic resonance until the two Mn2+ binding sites per monomer are filled. The substitution of a rare earth ion for Ca2+ ion in the above experiment often resulted in a slight displacement of Mn2+ from the transition metal site as detected by electron paramagnetic resonance. A water proton relaxation rate study of the titration of apoconcanavalin A with Gd3+ reflects two binding sites with a KD = 40 μm ± 4 μm and two with a KD = 200 μm ± 50 μm. The fluorescence emission spectrum of concanavalin A (λem = 340 nm) is slightly quenched by the addition of Tb3+ while Tb3+ fluorescence is greatly enhanced. A fluorometric titration of apoconcanavalin A with Tb3+ also reflects two sites with a KD = 40 μm ± 15 μm and two with a KD = 270 μm ± 50 μm.  相似文献   

6.
The oxidation of Mn2+-pyrophosphate to Mn3+ by superoxide (O2?) was quantitative as evidenced from the formation of Mn3+-pyrophosphate and hydrogen peroxide and from the inhibition by superoxide dismutase. Using the competitive relation between Mn2+-pyrophosphate and superoxide dismutase for the O2?, the rate constant of Mn2+ oxidation was estimated to be about 6 × 106m?1 s?1. The oxidation of Mn2+-pyrophosphate by illuminated chloroplasts was also indicated to be stoichiometrically induced by O2?. In the presence of saturating amounts of the Mn2+, a double enhancement of hydrogen peroxide production and triple uptake of oxygen were found, as expected from the oxidation of Mn2+-pyrophosphate by O2?. Anaerobiosis or superoxide dismutase annuled these increments. We propose that the O2? generated as the sole initial step of the Mehler reaction oxidized Mn2+-pyrophosphate, and we discuss the role of free manganese in chloroplasts.  相似文献   

7.
Metal ion interactions of the monofunctional partial complex of Salmonella typhimurium anthranilate synthase were investigated using kinetic, NMR, and EPR methods. Mn2+ activates AS-partial complex in place of Mg2+, with a Km of 0.08 microM for Mn2+ and of 3.5 microM for Mg2+ in glutamine-dependent anthranilate synthase activity. The kinetics indicated that the metal interacts at the active site with chorismate, not glutamine. EPR and NMR water proton relaxation rate (PRR) studies supported this conclusion. EPR binding analysis showed that chorismate dramatically tightens Mn2+ binding by the partial complex. PRR experiments indicated that stoichiometric amounts of chorismate cause a substantial decrease in the enhancement of water relaxation by Mn2+, while millimolar amounts of glutamine have no effect. Analysis of the frequency dependence of water proton relaxation rates yielded dipolar correlation times of 2.5 x 10(-9) s and 4.1 x 10(-9) s for the Mn2+-partial complex and Mn2+-partial complex-chorismate complexes, respectively. These studies also indicated that chorismate binding reduces the number of fast-exchanging water molecules on enzyme-bound Mn2+ from 1 to 0.25. PRR experiments with the native bifunctional anthranilate synthase-phosphoribosyltransferase enzyme indicated the existence of additional Mn2+-binding sites which presumably function to activate the phosphoribosyltransferase activity of the Component II subunit.  相似文献   

8.
The properties of the anthranilate synthetase complex and its separated subunits were compared in catalyzing the anthranilate synthetase reaction, chorismate + l-glutamine or NH(4) (+) --> anthranilate, and the transferase reaction, anthranilate + 5'-phosphorylribosyl-1-pyrophosphate --> phosphoribosyl anthranilate. It is shown that anthranilate synthetase component I is activated by normal anthranilate synthetase component II, a component II(CRM) (CRM = immunologically cross-reacting material), and by a presumed fragment of component II produced by a deletion mutant. Significant differences between the complex and its subunits are demonstrated with respect to substrate affinity, thermostability, feedback inhibitor sensitivity, and activity in the presence of various divalent cations. Of particular interest are the findings that the transferase activity of component II is only inhibitable by l-tryptophan when the component is in the complex and that this inhibition does not appear to depend upon the feedback-sensitive site of component I.  相似文献   

9.
Glucose-6-phosphate dehydrogenase (E.C. 1.1.1.49) was partially purified by fractionation with ammonium sulfate and phosphocellulose chromatography. The Km value for glucose-6-phosphate is 1.6 × 10?4 and 6.3 × 10?4M at low (1.0–6.0 × 10?4M) and high (6.0–30.0 × 10?4M) concentrations of the substrate, respectively. The Km value for NADP+ is 1.4 × 10?5M. The enzyme is inhibited by NADPH, 5-phosphoribosyl-1-pyrophosphate, and ATP, and it is activated by Mg2+, and Mn2+. In the presence of NADPH, the plot of activity vs. NADP+ concentration gave a sigmoidal curve. Inhibition of 5-phosphoribosyl-1-pyrophosphate and ATP is reversed by Mg2+ or a high pH. It is suggested that black gram glucose-6-phosphate dehydrogenase is a regulatory enzyme of the pentose phosphate pathway.  相似文献   

10.
Bovine brain hexokinase enhances the effect of Mn(II) on the longitudinal relaxation rate of water protons. Direct interaction of Mn(II) with the enzyme has been studied using electron spin resonance and proton relaxation rate enhancement methods. The results indicate that brain hexokinase has 1.05 ± 0.13 tight binding sites and 7 ± 2 weak binding sites with a dissociation constant, KD = 25 ± 4 μM and KD = 1050 ± 290 μM, respectively, at pH 8.0, 23 °C. The characteristic enhancement ?b) for hexokinase-Mn(II) complex evaluated from proton relaxation rate enhancement studies, gave ?b = 3.5 ± 0.4 for tight binding sites and an average ?b = 2.3 ± 0.5 per site for weak binding sites at 9 MHZ. The dissociation constant of Mn(II) for tight binding sites on the enzyme exhibits strong temperature dependence. In the low-temperature region (5–12 °C) brain hexokinase probably undergoes a conformational change. Frequency dependence of the normalized relaxation rate for bound water at various temperatures has shown that the number of exchangeable water molecules left in the first coordination sphere of bound Mn(II) is about one at 30 °C and about two at 18 °C. Binding of glucose 6-phosphate to hexokinase results in large-line broadening of the resonances of anomeric protons of the sugar. However, no such effect was observed in the case of glucose binding. These results suggest different modes of interaction of these two sugars to hexokinase. Line broadening of the C-(1) hydrogen resonances of glucose caused by Mn(II) in the presence of hexokinase suggests the proximity of the Mn(II) binding site to that of glucose. A lower limit of 1330 ± 170 s?1 for the rate of dissociation of glucose from enzyme-Mn(II)-glucose complex has been obtained from these studies.  相似文献   

11.
During the growth cycle of normal fibroblasts and of fibroblasts deficient in glucose-6-phosphate dehydrogenase activity, the concentration of 5-phosphoribosyl-1-pyrophosphate and of Pi, as well as the activity of 5-phosphoribosyl-1-pyrophosphate synthetase, decreased to stable values in confluent cultures. A high degree of correlation (0.89 and 0.91 for two normal and 0.69 for one glucose-6-phosphate dehydrogenase-deficient cell strain, respectively) was shown between intracellular Pi and 5-phosphoribosyl-1-pyrophosphate concentrations under varying culture and incubation conditions. 5-phosphoribosyl-1-pyrophosphate concentrations were elevated in normal fibroblasts incubated with methylene blue only if intracellular Pi levels were high. Neither methylene blue nor 6-aminonicotinamide, singly, affected intracellular Pi concentrations. However, when normal cells were pretreated with 6-aminonicotinamide and then with methylene blue, intracellular Pi decreased, 5-phosphoribosyl-1-pyrophosphate was depleted, and its rate of generation decreased. Under similar conditions, glucose-6-phosphate dehydrogenase-deficient fibroblasts maintained unaltered Pi levels, and 5-phosphoribosyl-1-pyrophosphate concentration and generation were slightly increased. The decrease in intracellular Pi in normal cells after the combined treatment was commensurate with an accumulation of 6-phosphogluconate, which did not take place in mutant cells. The changes in 5-phosphoribosyl-1-pyrophosphate synthesis, whether due to the stage of growth or various experimental manipulations, were always concordant with changes in intracellular Pi level. The regulatory role of Pi is consistent with the known enzymic properties of 5-phosphoribosyl-1-pyrophosphate synthetase.  相似文献   

12.
Summary When Lettree cells are exposed to Mn2+, the cation becomes associated with cells in two ways: in a relatively loose and mobile manner that gives a six-line EPR spectrum designated Mn b *, and in an immobile, relatively tight manner that gives no detectable EPR spectrum, designated Mn b . Mn b * is probably on the surface of cells; most Mn b is probably inside cells. NMR measurements of Lettree cell suspensions show two water proton relaxation rates and confirm the existence of cell-associated Mn. Human erythrocytes, on the other hand, bind no Mn2+ under these conditions, as judged by EPR and NMR measurements.Virally-treated Lettree cells show an increase in Mn b (but not in Mn b *). They also show a third water proton relaxation rate.  相似文献   

13.
The rare earth gadolinium forms a binary enzyme-metal complex with muscle pyruvate kinase which enhances the water proton relaxation rate (?b = 12 ± 2). Analysis of a Scatchard plot of the binding data indicates 3.7 ± 0.5 gadolinium binding sites with Kd = 26 ± 10 μM per protein of 237,000 daltons. The transition metal ion, manganese, is displaced from the enzyme by the rare earths, gadolinium, neodymium, thulium, and lanthanum as well as the alkaline earths, magnesium and calcium suggesting all of these metal ions bind to the same site on the protein. Upon addition of ATP to a solution of gadolinium and enzyme a decrease in enhancement is observed which is consistent with the formation of a metal bridge complex. Because of the low dissociation constant for the Gd-ATP complex (0.1 μm) it is possible to directly measure the dissociation of the Gd-ATP complex from the ternary enzyme-Gd-ATP complex, K2 = 13 μM ± 4 μM. However, a ternary complex of phospho-enolpyruvate-Gd-enzyme is not detected by water proton relaxation rate enhancement measurements which leads to speculation that the ionic radius of gadolinium (0.94 Å) is so large that it results in a distortion of the phosphoenolypyruvate binding site on pyruvate kinase thus preventing phosphoenolpyruvate binding.  相似文献   

14.
《BBA》1986,848(2):224-229
Evidence is presented for the presence of divalent cation binding sites in purified F1-ATPase from Micrococcus lysodeikticus (Micrococcus luteus). Electron paramagnetic resonance studies of native F1-ATPase indicate that the enzyme binds Mn2+ and Cu2+. Scatchard-type plot for Mn2+ binding to the enzyme indicates the presence of 3–4 independent and identical sites with a dissociation constant of 18.3 · 10−6 M. Cu2+ binds to the enzyme at only one kind of site(s). This Cu2+ binding site(s) is characterized by a moderately ionic ligand field provided by the protein and by a tetragonal symmetry of nitrogen and/or oxigen ligands. Competition studies indicate that Mg2+ binds at these Mn2+ and Cu2+ binding sites.  相似文献   

15.
The requirement for metal ions by glutamine synthetase of Escherichia coli in catalyzing the γ-glutamyl transfer reaction has been investigated. In order of decreasing V at pH 7.0, Cd2+, Mn2+, Mg2+, Ca2+, Co2+, or Zn2+ will support the activity of the unadenylylated enzyme in the presence of ADP. With AMP substituted for ADP to satisfy the nucleotide requirement, only Mn2+ or Cd2+ will support the activity of the unadenylylated enzyme. Kinetic and equilibrium binding measurements show a 1:1 interaction between the nonconsumable substrate ADP and each enzyme subunit of the dodecamer. (To obtain this result, each enzyme subunit must be active in catalyzing γ-glutamyl transfer.) The stability constant of the unadenylylated subunit for ADP-Mn is 3.5 × 105m?1, or ~2.86 × 107m?1 under assay conditions, with arsenate, Mn2+, and glutamine being responsible for this large affinity increase. Saturation of two Mn2+ ion-binding sites per enzyme subunit is absolutely required for activity expression. While apparently not affecting the affinity of the first Mn2+ bound (K′ = 1.89 × 106 M?1), glutamine increases the stability constant for the second Mn2+ bound from 2 × 104 to 5.9 × 105m?1. Reciprocally, increasing Mn2+ concentrations decreases the apparent Km′ value for glutamine. Glutamine (by producing a net uptake of protons in binding to the enzyme) is responsible for changing the proton release from 3 to about 1 for 2 Mn2+ bound per enzyme subunit, with ~0.5 H+ displaced in both fast and slow processes. The uv spectral change induced by the binding of the first Mn2+ to each enzyme subunit remains unchanged by the presence of glutamine. However, glutamine reduces the half-time of the spectral change or slow proton release from ~30 to ~20 sec at 37 °C. Binding and kinetic results indicate a mechanism involving a random addition of Mn2+ to two subunit sites. Saturation of the high-affinity site with Mn2+ induces a conformational change to an active configuration, while activity expression depends also on the saturation of a second Mn2+ binding site (at or near the catalytic site). Once the first Mn2+ binding site of the subunit is saturated, an active enzyme complex can be formed either by the sequential binding of Mn2+ and ADP at the second site or by the binding of ADP-Mn complex directly to this site if the concentration of ADP-Mn is greater than 10?8m in the assay. Some additional observations on the binding of Mg2+, Ba2+, Ca2+, and Zn2+ to the enzyme are presented.  相似文献   

16.
Proton and phosphorus-31 nuclear spin–lattice relaxation times T1 and spin–spin relaxation times T2 have been measured on the single-stranded polyriboadenylic acid [poly(A)]–Mn2+ system in a neutral D2O solution in the temperature range 10°–90°C at 100 and 40.5 MHz, respectively, with the Fourier transform nmr method. Minimum values of T1 have been found for all these nuclei, which have enabled the exact estimation of apparent distances from Mn2+ to H2, H8, H1′, and the phosphorus nucleus to be 4.7, 4.1, 5.2, and 3.0 Å, respectively. The electron spin of Mn2+ penetrates into the phosphorus nucleus, giving 31P hyperfine coupling of more than 106 Hz. Evidence of penetration of the electron spin into H8 and H2 is also obtained, suggesting direct coordination of nitrogen atoms of the adenine ring to the Mn2+ Ion. Combined with the result from proton relaxation enhancement of water, it is concluded that every Mn2+ ion added is bound directly to two phosphate groups with a Mn2+–phosphorus distance of 3.3 Å, while a part of the Mn2+ ions are simultaneouly bound to the adenine ring. It is estimated that 39 ± 13% and 13 ± 5% of Mn2+ are coordinated by N7 and N3 (or N1), respectively. The motional freedom of poly(A) in the environment of the Mn2+ binding site has been found to be quenched to the extent that the rotational motion becomes several times slower than that of the corresponding Mn2+–free poly(A). The activation energies for the molecular motion are, however, practically unchanged from those for Mn2+–free poly(A), and are found to be 8.3, 8.5, 6.1, and 8.7 kcal/mol for H8, H2, H1′, and phosphorus, respectively. T2 of phosphorus is determined by the dissociation rate (k?1) of Mn2+ from the phosphate group for the whole temperature range studied with activation enthalpy of 6.5 kcal/mol. The dissociation rates of Mn2+ from the adenine ring are also estimated from proton T2 values below 50°C.  相似文献   

17.
EPR and water proton relaxation rate (1/T1) studies of partially (40%) and “fully” (90%) purified preparations of membrane-bound (Na++K+) activated ATPase from sheep kidney indicate one tight binding site for Mn2+ per enzyme dimer, with a dissociation constant (KD = 0.88 μM) in agreement with the kinetically determined activator constant, identifying this Mn2+-binding site as the active site of the ATPase. Competition studies indicate that Mg2+ binds at this site with a dissociation constant of 1 mM in agreement with its activator constant. Inorganic phosphate and methylphosphonate bind to the enzyme-Mn2+ complex with similar high affinities and decrease l/T1 of water protons due t o a decrease from four to three in the number of rapidly exchanging water protons in the coordination sphere of enzyme-bound Mn2+. The relative effectiveness of Na+ and K+ in facilitating ternary complex formation with HPO and CH3PO as a function of pH indicates that Na+ induces the phosphate monoanion t o interact with enzyme-bound Mn2+, while K+ causes the phosphate dianion to interact with the enzyme-bound Mn2+. Thus protonation of an enzyme-bound phosphoryl group would convert a K+-binding site to a Na+-binding site. Dissociation constants for K+ and Na+, estimated from NMR titrations, agreed with kinetically determined activator constants of these ions consistent with binding t o the active site. Parallel 32Pi-binding studies show negligible formation (< 7%) of a covalent E–P complex under these conditions, indicating that the NMR method has detected an additional noncovalent intermediate in ion transport. Ouabain, which increases the extent of phosphorylation of the enzyme to 24% at pH 7.5 and t o 106% at pH 6.1, produced further decreases in l/T 1 of water protons. Preliminary 31P-relaxation studies of CH3PO in the presence of ATPase and Mn2+ yield an Mn to P distance (6.9 ± 0.5 Å) suggesting a second sphere enzyme-Mn-ligand-CH3PO complex. Previous kinetic studies have shown that T1+ substitutes for K+ in the activation of the enzyme but competes with Na+ at higher levels. From the paramagnetic effect of Mn2+ at the active site on the enzyme on I/T1 of 205T1 bound at the Na+ site, a Mn2+ to T1+ distance of 4.0 ± 0.1 Å is calculated, suggesting the sharing of a common ligand atom by Mn2+ and T1+ on the ATPase. Addition of P. increases this distance to 5.4 Å consistent with the insertion of P between Mn2+ and T1+. These results are consistent with a mechanism for the \documentclass{article}\pagestyle{empty}\begin{document}$ (\mathop {\rm N}\limits^{\rm i} {\rm a}^{\rm + } {\rm + K}^ +) $\end{document}-ATPase and for ion transport in which the ionization state of Pi at a single enzyme active site controls the binding and transport of Na+ and K+, and indicate that the transport site for monovalent cations is very near the catalytic site of the ATTase. Our mechanism also accounts for the order of magnitude weaker binding of Na+ compared to K+.  相似文献   

18.
Conditions are described where 5-phosphoribosyl-α-1-pyrophosphate (PRPP) can be determined by thin-layer chromatographic methods commonly used for the determination of nucleoside triphosphate pools in 32P-labeled bacteria. A two-dimensional chromatographic system is described where very small pools of PRPP (about 0.03 μmol per gram dry weight bacteria) can be determined. In a uni-dimensional chromatographic system the lower limit for detection of PRPP pools is about 0.3 μmol per gram dry weight bacteria. This uni-dimensional system offers an assay also for PRPP synthetase activity even in crude extracts using [γ-32P]ATP as a substrate. The assay is highly specific due to the chromatographic isolation of PRPP and is very sensitive due to the use of 32P labeling.The chromatographic methods for determination of PRPP pools and of activities of PRPP synthetase have been applied to the analysis of some mutants of Salmonella typhimurium and have provided results that agree well with the results obtained by conventional methods of PRPP analysis.  相似文献   

19.
This study shows that if one component of a reaction at equilibrium is freely diffusible through a semipermeable membrane, and if an aliquot of this component is removed through the membrane at its equilibrium concentration, the concentration of this component in the reaction mixture remains unchanged. This is illustrated by the binding of manganese (Mn2+) to concanavalin A. It is also shown that, at concentrations of calcium ions near saturation levels (0.01 m CaCh2, pH 5.2, 0.2 m NaCl), the binding of 1 mol of Mn2+ is extremely strong, with a dissociation constant K < 10?7, and at least 1 additional mol of Mn2+/mol of concanavalin A binds less strongly. As the pH is lowered, the affinity decreases to a small extent, until at pH 1.82 approximately 0.25 mol of Mn2+ binds/mol of protein. A possible application of the method to measure binding as a function of ligand concentration is described.  相似文献   

20.
1. Anthranilate synthetase activity in crude extracts from tissue cultures of Daucus carota L. (carrot), Nicotiana tabacum L. (tobacco; cv. Wisconsin 38 and xanthi), Glycine max Merr. (soybean) and Oryza sativa L. (rice) was completely inhibited by l -tryptophan (5 to 50 μM). Mutant carrot and tobacco lines, capable of growth in the presence of 5-methyltryptophan, required 500 to more than 1000 μM tryptophan for complete inhibition of enzyme activity, respectively. 2. Except for the mutant tobacco line, the concentrations of free tryptophan in all tissue cultures tested were greater than the levels necessary to completely inhibit the respective anthranilate synthetase activities in vitro. These findings would indicate that much of the free tryptophan is compartmentalized away from the regulatory enzyme, anthranilate synthetase. This could implicate compartmentalization of the inhibitor as a biosynthetic control mechanism. 3. During the growth of normal and mutant carrot tissues the anthranilate synthetase enzyme must be at least 7.8 and 10.8% active, respectively, in order to accumulate the amount of tryptophan found in the tissues. 4. Of the substrates and cofactors required for anthranilate synthetase activity in vitro, Mg2+ and glutamine were present at near optimal levels in the carrot and tobacco tissues, but chorismate was found to be significantly below the optimal concentrations.  相似文献   

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