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1.
Biochemistry ; 39(31): 9174-87, 2000 Aug 08.
Article in English | MEDLINE | ID: mdl-10924111

ABSTRACT

Phenylalanine dehydrogenase catalyzes the reversible, pyridine nucleotide-dependent oxidative deamination of L-phenylalanine to form phenylpyruvate and ammonia. We have characterized the steady-state kinetic behavior of the enzyme from Rhodococcus sp. M4 and determined the X-ray crystal structures of the recombinant enzyme in the complexes, E.NADH.L-phenylalanine and E.NAD(+). L-3-phenyllactate, to 1.25 and 1.4 A resolution, respectively. Initial velocity, product inhibition, and dead-end inhibition studies indicate the kinetic mechanism is ordered, with NAD(+) binding prior to phenylalanine and the products' being released in the order of ammonia, phenylpyruvate, and NADH. The enzyme shows no activity with NADPH or other 2'-phosphorylated pyridine nucleotides but has broad activity with NADH analogues. Our initial structural analyses of the E.NAD(+).phenylpyruvate and E.NAD(+). 3-phenylpropionate complexes established that Lys78 and Asp118 function as the catalytic residues in the active site [Vanhooke et al. (1999) Biochemistry 38, 2326-2339]. We have studied the ionization behavior of these residues in steady-state turnover and use these findings in conjunction with the structural data described both here and in our first report to modify our previously proposed mechanism for the enzymatic reaction. The structural characterizations also illuminate the mechanism of the redox specificity that precludes alpha-amino acid dehydrogenases from functioning as alpha-hydroxy acid dehydrogenases.


Subject(s)
Amino Acid Oxidoreductases/chemistry , Rhodococcus/enzymology , Amino Acid Oxidoreductases/antagonists & inhibitors , Amino Acid Oxidoreductases/isolation & purification , Catalysis , Crystallography, X-Ray , Enzyme Inhibitors/chemistry , Hydrogen/chemistry , Hydrogen-Ion Concentration , Kinetics , Lactates/chemistry , Ligands , Models, Molecular , Molecular Sequence Data , NAD/chemistry , NADP/chemistry , Phenylalanine/chemistry , Phenylpropionates/chemistry , Protein Conformation , Stereoisomerism , Structure-Activity Relationship , Substrate Specificity
2.
Proc Natl Acad Sci U S A ; 97(4): 1467-72, 2000 Feb 15.
Article in English | MEDLINE | ID: mdl-10677485

ABSTRACT

The ligand binding domain of the human vitamin D receptor (VDR) was modeled based on the crystal structure of the retinoic acid receptor. The ligand binding pocket of our VDR model is spacious at the helix 11 site and confined at the beta-turn site. The ligand 1alpha, 25-dihydroxyvitamin D(3) was assumed to be anchored in the ligand binding pocket with its side chain heading to helix 11 (site 2) and the A-ring toward the beta-turn (site 1). Three residues forming hydrogen bonds with the functionally important 1alpha- and 25-hydroxyl groups of 1alpha,25-dihydroxyvitamin D(3) were identified and confirmed by mutational analysis: the 1alpha-hydroxyl group is forming pincer-type hydrogen bonds with S237 and R274 and the 25-hydroxyl group is interacting with H397. Docking potential for various ligands to the VDR model was examined, and the results are in good agreement with our previous three-dimensional structure-function theory.


Subject(s)
Receptors, Calcitriol/chemistry , Amino Acid Sequence , Animals , COS Cells , Calcitriol/chemistry , Computer Simulation , Humans , Hydrogen Bonding , Ligands , Models, Molecular , Molecular Sequence Data , Mutation , Protein Binding/genetics , Protein Structure, Secondary , Receptors, Calcitriol/genetics , Receptors, Retinoic Acid/chemistry , Sequence Alignment , Structure-Activity Relationship , Transcription, Genetic
3.
Biochemistry ; 38(8): 2326-39, 1999 Feb 23.
Article in English | MEDLINE | ID: mdl-10029526

ABSTRACT

The molecular structures of recombinant L-phenylalanine dehydrogenase from Rhodococcus sp. M4 in two different inhibitory ternary complexes have been determined by X-ray crystallographic analyses to high resolution. Both structures show that L-phenylalanine dehydrogenase is a homodimeric enzyme with each monomer composed of distinct globular N- and C-terminal domains separated by a deep cleft containing the active site. The N-terminal domain binds the amino acid substrate and contributes to the interactions at the subunit:subunit interface. The C-terminal domain contains a typical Rossmann fold and orients the dinucleotide. The dimer has overall dimensions of approximately 82 A x 75 A x 75 A, with roughly 50 A separating the two active sites. The structures described here, namely the enzyme.NAD+.phenylpyruvate, and enzyme. NAD+.beta-phenylpropionate species, represent the first models for any amino acid dehydrogenase in a ternary complex. By analysis of the active-site interactions in these models, along with the currently available kinetic data, a detailed chemical mechanism has been proposed. This mechanism differs from those proposed to date in that it accounts for the inability of the amino acid dehydrogenases, in general, to function as hydroxy acid dehydrogenases.


Subject(s)
Amino Acid Oxidoreductases/antagonists & inhibitors , Amino Acid Oxidoreductases/chemistry , Rhodococcus/enzymology , Amino Acid Oxidoreductases/metabolism , Binding Sites , Crystallization , Crystallography, X-Ray , Deamination , Macromolecular Substances , Models, Molecular , NAD/chemistry , NAD/metabolism , Oxidation-Reduction , Phenylpropionates/chemistry , Phenylpropionates/metabolism , Protein Conformation , Protein Structure, Tertiary
4.
Biochemistry ; 36(37): 11100-17, 1997 Sep 16.
Article in English | MEDLINE | ID: mdl-9287153

ABSTRACT

A combination of structural, thermodynamic, and transient kinetic data on wild-type and mutant Anabaena vegetative cell ferredoxins has been used to investigate the nature of the protein-protein interactions leading to electron transfer from reduced ferredoxin to oxidized ferredoxin:NADP+ reductase (FNR). We have determined the reduction potentials of wild-type vegetative ferredoxin, heterocyst ferredoxin, and 12 site-specific mutants at seven surface residues of vegetative ferredoxin, as well as the one- and two-electron reduction potentials of FNR, both alone and in complexes with wild-type and three mutant ferredoxins. X-ray crystallographic structure determinations have been carried out for six of the ferredoxin mutants. None of the mutants showed significant structural changes in the immediate vicinity of the [2Fe-2S] cluster, despite large decreases in electron-transfer reactivity (for E94K and S47A) and sizable increases in reduction potential (80 mV for E94K and 47 mV for S47A). Furthermore, the relatively small changes in Calpha backbone atom positions which were observed in these mutants do not correlate with the kinetic and thermodynamic properties. In sharp contrast to the S47A mutant, S47T retains electron-transfer activity, and its reduction potential is 100 mV more negative than that of the S47A mutant, implicating the importance of the hydrogen bond which exists between the side chain hydroxyl group of S47 and the side chain carboxyl oxygen of E94. Other ferredoxin mutations that alter both reduction potential and electron-transfer reactivity are E94Q, F65A, and F65I, whereas D62K, D68K, Q70K, E94D, and F65Y have reduction potentials and electron-transfer reactivity that are similar to those of wild-type ferredoxin. In electrostatic complexes with recombinant FNR, three of the kinetically impaired ferredoxin mutants, as did wild-type ferredoxin, induced large (approximately 40 mV) positive shifts in the reduction potential of the flavoprotein, thereby making electron transfer thermodynamically feasible. On the basis of these observations, we conclude that nonconservative mutations of three critical residues (S47, F65, and E94) on the surface of ferredoxin have large parallel effects on both the reduction potential and the electron-transfer reactivity of the [2Fe-2S] cluster and that the reduction potential changes are not the principal factor governing electron-transfer reactivity. Rather, the kinetic properties are most likely controlled by the specific orientations of the proteins within the transient electron-transfer complex.


Subject(s)
Ferredoxin-NADP Reductase/metabolism , Ferredoxins/metabolism , Anabaena , Crystallography, X-Ray , Ferredoxins/genetics , Models, Chemical , Models, Molecular , Molecular Sequence Data , Mutagenesis, Site-Directed , Oxidation-Reduction , Protein Conformation , Structure-Activity Relationship
5.
Biochemistry ; 35(23): 7615-20, 1996 Jun 11.
Article in English | MEDLINE | ID: mdl-8652544

ABSTRACT

UDP-galactose 4-epimerase from Escherichia coli contains tightly bound NAD+, which participates in catalyzing the interconversion of UDP-galactose and UDP-glucose through its redox properties. The purified enzyme is a dimer of identical subunits that consists of a mixture of catalytically active subunits designated E.NAD+ and inactive, abortive complexes designated E.NADH.uridine nucleotide, in which the uridine nucleotide may be UDP-glucose, UDP-galactose, or UDP [Vanhooke, J. L., & Frey, P. A. (1994) J. Biol. Chem. 269, 31496-31404]. The abortive complexes are transformed into active E.NAD+ by denaturation of the purified enzyme at 4 degrees C in 6 M guanidine hydrochloride buffered at pH 7.0 in the presence of 0.126 mM NAD+ for 3 h, followed by dilution of guanidine hydrochloride to 0.18 M and of NAD+ to 0.076 mM for 2 h. The renatured enzyme is fully active and contains negligible amounts of NADH and uridine nucleotides. The extinction coefficent of the epimerase at 280 nm is 1.81 +/- 0.15 mL mg-1 cm-1 (epsilon 280 = 137 +/- 11 mM-1 cm-1), as determined by quantitative amino acid analysis and spectrophotometric measurements. This value allows the value of the extinction coefficient for the reduced enzyme (E.NADH)to be calculated as epsilon 344 = 5.7 mM-1 cm-1. On the basis of the new value of epsilon 280, analytical measurements of the nAD+ content of epimerase show that there are two molecules of NAD+ per dimer, which confirms conclusions from X-ray crystallography and revises the earlier bioanalytical determinations. The ultraviolet/visible absorption spectrum of E.NAD+ from denaturation-renaturation experiments reveals the presence of a broad absorption band extending from 300 nm to beyond 360 nm that cannot be attributed to NADH and appears to be a charge-transfer band. This band is partially bleached by UMP and almost totally abolished by UDP, indicating that the interactions leading to the charge-transfer band are altered by the uridine nucleotide-induced conformational change in this enzyme. This conformational change is associated with control of the chemical reactivity of NAD+ in the reaction mechanism.


Subject(s)
Escherichia coli/enzymology , Protein Conformation , UDPglucose 4-Epimerase/metabolism , Kinetics , NAD/metabolism , NAD/pharmacology , Protein Denaturation , Protein Folding , Recombinant Proteins/chemistry , Recombinant Proteins/metabolism , Spectrometry, Fluorescence , Spectrophotometry, Ultraviolet , UDPglucose 4-Epimerase/chemistry , Urea/pharmacology , Uridine Diphosphate/metabolism
6.
Biochemistry ; 35(19): 6020-5, 1996 May 14.
Article in English | MEDLINE | ID: mdl-8634243

ABSTRACT

Phosphotriesterase from Pseudomonas diminuta catalyzes the hydrolysis of paraoxon and related acetylcholinesterase inhibitors with rate enhancements that approach 10(12). The enzyme requires a binuclear metal center for activity and as isolated contains 2 equiv of zinc per subunit. Here we describe the three-dimensional structure of the Zn2+/Zn2+-substituted enzyme complexed with the substrate analog diethyl 4-methylbenzylphosphonate. Crystals employed in the investigation belonged to the space group C2 with unit cell dimensions of a = 129.6 A, b = 91.4 A, c = 69.4 A, beta = 91.9 degrees, and two subunits in the asymmetric unit. The model was refined by least-squares analysis to a nominal resolution of 2.1 A and a crystallographic R-factor of 15.4% for all measured X-ray data. As in the previously reported structure of the cadmium-containing enzyme, the bridging ligands are a carbamylated lysine residue (Lys 169) and a hydroxide. The zinc ions are separated by 3.3 A. The more buried zinc ion is surrounded by His 55, His 57, Lys 169, Asp 301, and the bridging hydroxide in a trigonal bipyramidal arrangement as described for the cadmium-substituted enzyme. Unlike the octahedral coordination observed for the more solvent-exposed cadmium ion, however, the second zinc is tetrahedrally ligated to Lys 169, His 201, His 230, and the bridging hydroxide. The diethyl 4-methylbenzylphosphonate occupies a site near the binuclear metal center with the phosphoryl oxygen of the substrate analog situated at 3.5 A from the more solvent-exposed zinc ion. The aromatic portion of the inhibitor binds in a fairly hydrophobic pocket. A striking feature of the active site pocket is the lack of direct electrostatic interactions between the inhibitor and the protein. This most likely explains the broad substrate specificity exhibited by phosphotriesterase. The position of the inhibitor within the active site suggests that the nucleophile for the hydrolysis reaction is the metal-bound hydroxide.


Subject(s)
Esterases/chemistry , Organophosphonates/metabolism , Zinc/analysis , Aryldialkylphosphatase , Crystallography, X-Ray , Esterases/metabolism , Pseudomonas/enzymology , Stereoisomerism , Substrate Specificity
7.
J Biol Chem ; 269(50): 31496-504, 1994 Dec 16.
Article in English | MEDLINE | ID: mdl-7989316

ABSTRACT

UDP-galactose 4-epimerase catalyzes the interconversion of UDP-galactose and UDP-glucose. The enzyme from Escherichia coli is a dimeric protein with an overall molecular weight of 79,000 that contains NAD+ very tightly but noncovalently bound in the enzymatic active site. NAD+ is the coenzyme for epimerization and is transiently reduced to NADH in the course of catalysis. All samples of highly purified UDP-galactose 4-epimerase contain significant amounts of NADH, and that purified after overexpression in E. coli cells contains a substantial amount of NADH. To the degree that NADH replaces enzyme bound NAD+ in the coenzyme binding site, the epimerase activity is decreased. The extinction coefficient at 345 nm for NADH in its binding site is estimated to be 3.3 mM-1 cm-1. 31P NMR spectroscopic and enzymatic analyses reveal that UDP-glucose, UDP-galactose, UDP, and UMP are gradually released from the purified enzyme upon addition of UMP or P1-5'-uridine-P2-methyl diphosphate (MeUDP). It is concluded that NADH associated with the purified enzyme is a component of inactive, abortive complexes (E-NADH-uridine nucleotide) that contain tightly bound uridine nucleotides in place of the epimerization intermediate UDP-4-keto-alpha-D-hexoglucopyranose. These complexes are produced in vivo in the course of bacterial growth. The enzymatic activity of purified epimerase is increased by reaction with 1,2-naphthoquinone-4-sulfonate, which oxidizes the NADH to NAD+. Compositionally defined abortive complexes (E-NADH-uridine nucleotide) containing UMP, UDP, or UDP-hexoses (Glc/Gal) have been prepared in vitro and subjected to activation by 1,2-naphthoquinone-4-sulfonate. All are activated at rates comparable to that for the purified enzyme, although those containing UMP and UDP-hexose are more readily activated than those containing UDP. The activity of the reactivated enzyme approaches that of the most highly active epimerase that has been reported from E. coli.


Subject(s)
Carbohydrate Epimerases/metabolism , UDPglucose 4-Epimerase , Enzyme Activation , Escherichia coli/enzymology , Kinetics , Magnetic Resonance Spectroscopy , NAD/metabolism , Oxidation-Reduction , Spectrophotometry, Ultraviolet , Structure-Activity Relationship , Uracil Nucleotides/metabolism
9.
Biochemistry ; 28(6): 2645-54, 1989 Mar 21.
Article in English | MEDLINE | ID: mdl-2659075

ABSTRACT

The phosphorus atoms of NAD+ bound within the active site of UDP-galactose 4-epimerase from Escherichia coli exhibit two NMR signals, one at delta = -9.60 +/- 0.05 ppm and one at delta = -12.15 +/- 0.01 ppm (mean +/- standard deviation of four experiments) relative to 85% H3PO4 as an external standard. Titration of epimerase.NAD+ with UMP causes a UMP-dependent alteration in the chemical shifts of the resulting exchange-averaged spectra, which extrapolate to delta = -10.51 ppm and delta = -11.06 ppm, respectively, for the fully liganded enzyme, with an interconversion rate between epimerase.NAD+ and epimerase.NAD+.UMP of at least 490 s-1. Conversely, the binding of 8-anilinonaphthalene-1-sulfonate, which is competitive with UMP, causes a significant sharpening of the epimerase.NAD+ resonances but very little alteration in their chemical shifts, to delta = -9.38 ppm and delta = -12.16 ppm, respectively. UMP-dependent reductive inactivation by glucose results in the convergence of the two resonances into a single signal of delta = -10.57 ppm, with an off-rate constant for UMP dissociation from the epimerase.NADH.UMP complex estimated at 8 s-1. Reductive inactivation by borohydride under anaerobic conditions yields a single, broad resonance centered at about delta = -10.2 ppm. The data are consistent with, and may reflect, the activation of NAD+ via a protein conformational change, which is known from chemical studies to be driven by uridine nucleotide binding. Incubation of epimerase.NAD+ with UMP in the absence of additional reducing agents causes a very slow reductive inactivation of the enzyme with an apparent pseudo-first-order rate constant of 0.013 +/- 0.001 h-1, which appears to be associated with liberation of inorganic phosphate from UMP.


Subject(s)
Carbohydrate Epimerases/metabolism , Escherichia coli/enzymology , NAD/metabolism , UDPglucose 4-Epimerase/metabolism , Binding Sites , Magnetic Resonance Spectroscopy/methods , Oxidation-Reduction , Phosphorus , Protein Binding , Protein Conformation , UDPglucose 4-Epimerase/antagonists & inhibitors , Uridine Monophosphate/pharmacology
10.
J Bacteriol ; 170(8): 3493-8, 1988 Aug.
Article in English | MEDLINE | ID: mdl-3042752

ABSTRACT

A xanthosine-inducible enzyme, inosine-guanosine phosphorylase, has been partially purified from a strain of Escherichia coli K-12 lacking the deo-encoded purine nucleoside phosphorylase. Inosine-guanosine phosphorylase had a particle weight of 180 kilodaltons and was rapidly inactivated by p-chloromercuriphenylsulfonic acid (p-CMB). The enzyme was not protected from inactivation by inosine (Ino), 2'-deoxyinosine (dIno), hypoxanthine (Hyp), Pi, or alpha-D-ribose-1-phosphate (Rib-1-P). Incubating the inactive enzyme with dithiothreitol restored the catalytic activity. Reaction with p-CMB did not affect the particle weight. Inosine-guanosine phosphorylase was more sensitive to thermal inactivation than purine nucleoside phosphorylase. The half-life determined at 45 degrees C between pH 5 and 8 was 5 to 9 min. Phosphate (20 mM) stabilized the enzyme to thermal inactivation, while Ino (1 mM), dIno (1 mM), xanthosine (Xao) (1 mM), Rib-1-P (2 mM), or Hyp (0.05 mM) had no effect. However, Hyp at 1 mM did stabilize the enzyme. In addition, the combination of Pi (20 mM) and Hyp (0.05 mM) stabilized this enzyme to a greater extent than did Pi alone. Apparent activation energies of 11.5 kcal/mol and 7.9 kcal/mol were determined in the phosphorolytic and synthetic direction, respectively. The pH dependence of Ino cleavage or synthesis did not vary between 6 and 8. The substrate specificity, listed in decreasing order of efficiency (V/Km), was: 2'-deoxyguanosine, dIno, guanosine, Xao, Ino, 5'-dIno, and 2',3'-dideoxyinosine. Inosine-guanosine phosphorylase differed from the deo operon-encoded purine nucleoside phosphorylase in that neither adenosine, 2'-deoxyadenosine, nor hypoxanthine arabinoside were substrates or potent inhibitors. Moreover, the E. coli inosine-guanosine phosphorylase was antigenically distinct from the purine nucleoside phosphorylase since it did not react with any of 14 monoclonal antisera or a polyvalent antiserum raised against deo-encoded purine nucleoside phosphorylase.


Subject(s)
Escherichia coli/enzymology , Pentosyltransferases/isolation & purification , Purine-Nucleoside Phosphorylase , Hot Temperature , Hydrogen-Ion Concentration , Kinetics , Pentosyltransferases/metabolism
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