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J Henkin

Publications and source records attributed to J Henkin.

71 records · Page 4Linked to original sources

Comparison of model and nuclear magnetic resonance structures for the human inflammatory protein C5a.

The model structure previously proposed for human C5a, based upon the crystal structure of the homologous protein human C3a, is compared to the solution structure of human C5a recently determined by nuclear magnetic resonance (NMR) methods in our laboratory. The general folding and helix topography of the C5a protein were modeled very well. The N-terminus, which is disordered in the C3a crystal, was correctly predicted in the C5a model both as to its being a helix and as to its docking site on the rest of the molecule. On the other hand, the NMR data show that the biologically important C-terminal residues are disordered in solution, unlike the model and the C3a crystal structure where this region was helical.

Complement C5↗

Serum and synovial fluid levels of serum amyloid A protein and C-reactive protein in inflammatory and noninflammatory arthritis.

Serum and synovial fluid (SF) levels of serum amyloid A (SAA) and C-reactive protein (CRP) were measured in 46 cases of various inflammatory arthritis (Group 1), and in 40 cases of noninflammatory arthritis: 18 cases of osteoarthritis (Group 2) and 22 cases of traumatic arthritis (Group 3). Serum and SF SAA levels were markedly elevated in Group 1: 126.4 micrograms/ml +/- 19.2 SEM and 46.4 micrograms/ml +/- 10.5 SEM, respectively; moderately elevated in Group 2: 10.1 micrograms/ml +/- 2.9 SEM, 4.0 micrograms/ml +/- 1.1 SEM and moderately elevated in Group 3: 10.4 micrograms/ml +/- 1.2 SEM, 4.0 micrograms/ml +/- 1.2 SEM, respectively. Serum/SF SAA ratios were similar in all 3 groups and ranged between 2.52-2.72. In comparison to SAA, the increment of serum and SF CRP above normal levels was moderate. A positive strong correlation was found between serum SAA and serum CRP: r = 0.64 (p less than 0.001) and between SF SAA and SF CRP: r = 0.59 (p less than 0.0001). SF SAA did not correlate with the number of SF white blood cells but did correlate with the percent of SF polymorphonuclear cells: r = 0.23 (p less than 0.05).

Arthritis↗

Assessment of diphenylcyclopropenone for photochemically induced mutagenicity in the Ames assay.

The photochemical conversion of diphenylcyclopropenone to diphenylacetylene has recently been reported. Diphenylcyclopropenone is used in the treatment of alopecia areata and is nonmutagenic in a limited Ames assay. We examined diphenylcyclopropenone and diphenylacetylene, as well as synthetic precursors of diphenylcyclopropenone--dibenzylketone and alpha,alpha'-dibromodibenzylketone--for mutagenicity against TA100, TA98, TA102, UTH8413, and UTH8414. All compounds were nonmutagenic except alpha,alpha'-dibromodibenzylketone, which was a potent mutagen in TA100 with and without S-9 activation. The effect of photochemical activation of diphenylcyclopropenone in the presence of bacteria demonstrated mutagenicity in UTH8413 (two times background) at 10 micrograms/plate with S-9 microsomal activation. 8-Methoxypsoralen produces a mutagenic response in TA102 at 0.1 microgram/plate with 60 seconds of exposure to 350 nm light. In vitro photochemically activated Ames assay with S-9 microsomal fraction may enhance the trapping of short-lived photochemically produced high-energy mutagenic intermediates. This technique offers exciting opportunities to trap high-energy intermediates that may play an important role in mutagenesis. This method can be applied to a variety of topically applied dermatologic agents, potentially subjected to photochemical changes in normal use.

Cyclopropanes↗

Quinidine-induced lupus erythematosus-like syndrome: three case reports and a review of the literature.

Three patients with an LE-like syndrome secondary to quinidine are described. Twenty-two similar cases are reviewed. The clinical picture is characterized mainly by polyarthritis, pleuritis, fever and dermatitis. The common laboratory findings are positive antinuclear antibodies, absence of anti-DNA antibodies, thrombocytopenia, leukopenia and abnormal liver function tests. This LE-like syndrome may appear within days or up to several years after the start of quinidine treatment and disappears completely a few weeks after discontinuation of the drug.

Aged↗

Affinity labeling of dihydrofolate reductase with an antifolate glyoxal.

Dihydrofolate reductases from different species contain several highly conserved arginines, some of which have been shown by x-ray crystallography to have their guanido groups near the p-aminobenzoyl glutamate moiety of enzyme-bound methotrexate. The orientation of one of these (Arg-52) appears to be completely reversed in comparing the crystal structures of Escherichia coli with Lactobacillus casei enzyme (Bolin, J. T., Filman, D. J., Matthews, D. A., Hamlin, R. C., and Kraut, J. (1982). J. Biol. Chem. 257, 13650-13662). We synthesized a novel antifolate containing a glyoxal group designed to react specifically with active-site guanido groups which are able to approach the p-aminobenzoyl carbonyl of methotrexate. The binding of this compound to the enzyme was competitive with dihydrofolate (DHF) in ordinary buffers. In borate buffer at pH 8.0 it inactivated dihydrofolate reductases from both E. coli and L. casei at similar maximum rates, while the chicken liver enzyme was more slowly inactivated. The inactivation was stoichiometric, paralleled the loss of the glyoxal chromophore, and showed saturation kinetics. Inhibitor binding and thus inactivation was enhanced by NADPH, while DHF protected the enzyme. This allowed calculation of the Kd for DHF which was found to be identical with its Km. The stoichiometrically inactivated enzyme displayed the 340-nm chromophore characteristic of 4-aminopteridines bound to dihydrofolate reductase confirming active-site labeling with normal orientation of the ligand. The ligand remained covalently bound to inactivated enzyme upon denaturation at low pH but dissociated at neutral pH. Computer graphic modeling of the crystal structures predicted reaction of Arg-31 but not Arg-52 in L. casei dihydrofolate reductase and of only Arg-52 in the E. coli enzyme. Purification of the CNBr fragments from the inactivated enzymes gave a single labeled peptide for each species. The particular peptide tagged in each case was unaffected by the presence of NADPH and was in excellent agreement with the crystallographic predictions.

Affinity Labels↗

Squaric acid and esters: analysis for contaminants and stability in solvents.

Two squaric acid diesters, squaric acid diethyl ester (SADEE) and squaric acid dibutyl ester (SADBE), have been suggested as replacements for 2,4-dinitrochlorobenzene in the treatment of alopecia areata and alopecia totalis. We synthesized these squaric acid diesters and examined them for the presence of carcinogenic contaminants, hexachlorobutadiene and tetrachloro-2-cyclobutene-1-one, by gas chromatography-mass spectrometry (GC-MS). The stability of SADBE to hydrolysis by water in acetone, butanol, isopropanol, and absorbent ointment with and without molecular sieves was examined. The stability of SADEE in ethanol and acetone, with and without molecular sieves, was also studied. Hydrolysis products were detected by their formation of a colored complex with ferric chloride. This complex absorbs in the visual range at 480 nm, thus affording a convenient method for determination of the concentration of free squaric acid in a solution. No contaminants were found by positive or negative ion detection in our GC-MS system. At the end of 3 weeks the extent of hydrolysis was greater in alcohols than in acetone when 10 and 100 molar excess of water were added to the solutions. In the presence of molecular sieves, hydrolysis was reduced even at 100 molar excess of added water in alcohol ar acetone. However, under storage conditions without sieves, acetone solutions and alcohol solutions were equally stable over a period of 2 months. Molecular sieves reduce hydrolysis of squarate esters in the presence of a large molar excess of water, regardless of solvent.

Alopecia↗

Isotope, pulse-chase, stopped-flow, and rapid quench studies on the kinetic mechanism of bovine dihydropteridine reductase.

The kinetics of the reduction of quinonoid 2-amino-4-hydroxy-6, 7-dimethyldihydropteridine (DMPH2) catalyzed by bovine liver dihydropteridine reductase were examined with NADH, (S)-NADD, (S)-NADT, and [3H]-NADH as substrates. No significant deuterium isotope effect was observed on either Km or Vm, indicating that hydrogen transfer is not a major rate-limiting step of the reaction. Tritium from (S)-NADT is transferred to an exchangeable position of the pteridine product without significant isotopic discrimination. The ratio of tritium released into solvent to NAD+ produced is approximately 1.0 in the steady state as well as in the first enzyme turnover as determined by pulse-chase experiments. Pulse-chase methods also showed that the binary complex E.NADH is fully functional and can be completely converted to products prior to NADH dissociation in the presence of saturating DMPH2. The concentration of DMPH2 giving half-maximal trapping of E.NADH is identical with its Km as determined by steady-state kinetics. Stopped-flow kinetic measurements gave no evidence for a burst of NADH utilization. This was further demonstrated by rapid quench experiments which demonstrated a pre-steady-state rate nearly identical with that of the steady state. The above results are consistent with nonequilibrium ordered binding of substrates and with a rate-limiting isomerization in the ternary complex which precedes hydrogen transfer.

Animals↗

Diphenylcyclopropenone: examination for potential contaminants, mechanisms of sensitization, and photochemical stability.

Diphenylcyclopropenone (DPCP) has recently been reported to be a potent contact sensitizer for the treatment of alopecia areata. DPCP is nonmutagenic in the Ames assay. Studies on chemical purity, stability, and mechanisms of action are lacking. DPCP is synthesized by cyclization of alpha, alpha'-dibromodibenzylketone. The latter elicits a reaction in guinea pigs sensitized to DPCP. We examined a commercial sample of DPCP by gas chromatography--mass spectrometry for the presence of contaminants. The stability of dilute solutions of DPCP in ethanol and cyclohexane to fluorescent light, sunlight, and heat was followed by ultraviolet (UV) spectrometry. The isosbestic point and half-life for this reaction were determined. We found no original or intermediate reagents in our sample. DPCP was found to decompose, forming diphenylacetylene on exposure to both sunlight and fluorescent light in less than 2 weeks. Samples shielded from the light at -70 degrees C and at room temperature were stable over a 4-week period. The extent of decomposition was the same in both ethanol and cyclohexane. It is possible that DPCP may act as a prosensitizer with the actual sensitizer liberated by a photoactivated intermediate (stable, metastable, or unstable) or a combination of these.

Animals↗

Diethylstilbestrol (DES) quinone: a reactive intermediate in DES metabolism.

The quinone of E-diethylstilbestrol (DES), a postulated metabolic intermediate derived from DES, has been synthesized by oxidation of DES in chloroform using silver oxide. The reaction product was structurally characterized by infrared, ultraviolet, nuclear magnetic resonance, and mass spectrometry. The product of oxidation of DES by hydrogen peroxide, catalyzed by horseradish peroxidase and also by rat uterine peroxidase, was shown to be identical with synthetic DES quinone based on identical u.v. spectra and on identical decomposition products. DES quinone was stable only in non-protic solvents such as chloroform. In acids, bases or protic solvents, DES quinone rearranged to Z,Z-dienestrol (beta-DIES). The half-life of DES quinone in water was approximately 40 min; in methanol it was approximately 70 min. Bacterial mutagenicity (Ames) tests did not indicate that DES quinone had mutagenic or genotoxic activity. However, DES quinone was found to bind to calf thymus DNA without any enzyme mediation at levels significantly above the binding of DES under the same conditions. Based on the binding of DES quinone to DNA, this intermediate must be considered as a possible carcinogenic metabolite of DES.

Animals↗

Characterization of the aldehyde binding site of bacterial luciferase by photoaffinity labeling.

A photoaffinity probe 1-diazo-2-oxoundecane has been synthesized and used to examine the aldehyde-binding site of the nonidentical dimeric luciferase (alpha beta) from Vibrio harveyi cells. In the dark, the probe competes against aldehyde in binding to luciferase. Irradiation of luciferase and the probe at 254 nm resulted in primarily specific labeling of both alpha and beta subunits with concomitant enzyme inactivation, but significant (congruent to 40%) nonspecific labeling of mainly the beta subunit also occurred. The addition of decanal to protect the active center reduced the rate of inactivation. When 2-mercaptoethanol was included to quench the nonspecific labeling, the amounts of probe incorporated into alpha and beta correlated stoichiometrically with the quantities of enzyme photoinactivated. On the basis of these findings, we postulate that the aldehyde binding site is at or near the subunit interface of luciferase.

Affinity Labels↗

Novel fluorinated antifolates. Enzyme inhibition and cytotoxicity studies on 2'- and 3'-fluoroaminopterin.

Two novel analogues of aminopterin with a single fluorine substitution in the 2' (compound 8) or in the 3' (compound 9) position of the p-aminobenzoyl group were synthesized and evaluated as inhibitors of dihydrofolate reductase from two bacterial species and from human HeLa cells. The 2'-fluoro compound was bound essentially the same as aminopterin itself, while the 3'-fluoro derivative bound two- to threefold more tightly in all cases. UV spectral shifts indicated normal binding of the pteridine. Cytotoxicity studies against mouse leukemia L1210 cells and the human stomach cancer line HuTu80 indicated equivalent toxicity of the parent drug with the 2'-fluoro analogue. 3'-Fluoroaminopterin was, however, twice as toxic as aminopterin to both cell lines.

Aminopterin↗

Photolabeling reagent for thiol enzymes. Studies on rabbit muscle creatine kinase.

A mixed disulfide reagent for photolabeling is described which reacts stoichiometrically with a cysteine sulfhydryl group of rabbit muscle creatine kinase to form a new mixed disulfide between enzyme and 2-thiobenzyl[14C]diazoacetate. When irradiated at 254 nm for 5 s in a photoreactor, the enzyme-bound diazo group is destroyed, presumably via a carbene intermediate. After photolysis, the enzyme can only be 69+/-2% reactivated by dithiothreitol, and only 67+/-1% of the radiolabel can then be removed from the protein by dialysis in the presence of dithiothreitol. Less than 3% of this permanent labeling occurs if photolysis is carried out in 6 N guanidine hydrochloride, which shows that the native enzyme structure is required for photolabeling. Identification of the tagged products after acid hydrolysis indicates that 30% of the carbene produced on photolysis reacts with the hydroxyl groups of threonine andserine with O-[14C]carboxymethylthreonine as the major product. Photochemical Wolff rearrangement is estimated to occur to less than 30%, and no S-carboxymethylcysteine was detected. The reagent employed and its isomers are proposed as bifunctional photolabeling probes to "scan" the amino acid residues near the active sites of thiol enzymes.

Binding Sites↗

Evidence against an acyl-enzyme intermediate in the reaction catalyzed by clostridial phosphotransacetylase.

Clostridial phosphotransacetylase catalyzes acyl group transfer between coenzyme A (CoA) and inorganic phosphate and also the arsenolysis of acetyl-coenzyme A (AcCoA) to yield acetate and CoA-SH. The enzyme mobility on sodium dodecyl sulfate electrophoresis corresponds to a molecular weight of 70 000. Kinetics of both forward and reverse reactions are of the ternary type as previously reported and product inhibition data are consistent with a random binding scheme. One essential sulfhydryl group per 70 000 daltons was inactivated in a pseudo-first-order process by either N-ethylmaleimide or 5,5'-dithiobis (nitrobenzoic acid). Reduction of the rate of this inactivation by 50% in the presence of AcCoA or acetyl phosphate concentrations near their kinetic K values demonstrates binding of these acyl donors in simple enzyme-substrate complexes. Moreover, pulse-chase experiments show these binary complexes to be functional and also show that they do not dissociate rapidly compared with their rates of catalytic turnover. Incubation of the enzyme with 14C-labeled acyl donors failed to produce labeled protein after passage through Sephadex. This was true despite efforts to mimic "substrate synergism" with desulfo-CoA or to compensate for unfavorable equilibria by means of CoA traps. Very slow isotope exchange reactions of 32Pi into acetyl phosphate and [3H]CoA into AcCoA were at first observed. As in the cases of several other enzymes recently reexamined, these were shown on careful inspection to be artifacts of contamination by second substrates. Attempts to detect exchange reactions between acetyl phosphate and Pi, even in the presence of the CoA analogue, desulfo-CoA, were also unsuccessful. Therefore, no evidence for an acyl-enzyme could be detected. Furthermore, our data allow us to develop arguments which, we believe, indicate that an acyl-enzyme intermediate is extremely improbable in the reaction catalyzed by phosphotransacetylase.

Acetates↗