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A Bromberg

Publications and source records attributed to A Bromberg.

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Allosteric modulation of acetylcholinesterase activity by peripheral ligands involves a conformational transition of the anionic subsite.

Replacement of residues Asp74, Trp286, and Tyr72, which are constituents of the peripheral anionic site (PAS) of human acetylcholinesterase (HuAChE), affected similarly both the binding and the inhibition constants of the PAS-specific ligand propidium, demonstrating that changes in the inhibitory activity are a direct consequence of altered binding to the PAS. In contrast, the active center HuAChE mutants W86A and Y133A show respective 350- and 25-fold increased resistance to inhibition by propidium but no change in binding affinities, demonstrating that the allosteric mechanism of PAS-mediated inhibition involves a conformational change of these Trp86 and Tyr133 residues rather than physical obstruction of substrate access by the inhibitor itself. These findings support the recent proposal that the allosteric mechanism operates via transition between active and nonactive conformations of the anionic subsite Trp86 and that replacement of Tyr133 by alanine may stabilize a nonactive Trp86 conformation that occludes the active center [Ordentlich et al. (1995) J. Biol. Chem. 270, 2082]. In further support of this mechanism and the role of Tyr133, we find that (a) the dissociation constants (Kd) for the noncovalent complexes of the irreversible inhibitors diisopropyl phosphorofluoridate or paraoxon with Y133A HuAChE are increased 20-500-fold, relative to either wild-type enzyme or its Y133F or W86A mutants; and (b) access of substrates such as 3,3-dimethylbutyl thioacetate is restored by removal of Trp86 from the Y133A enzyme (i.e., the W86A/Y133A mutant). We suggest that the conformational transition of Trp86 is coupled to the motions of the cysteine loop (Cys69-Cys96) of HuAChE and is inherent to the dynamics of the native enzyme.

Acetylcholinesterase

Mechanism of inhibition of hemoglobin S polymerization by cyanate.

We have studied the effect of carbamylation on hemoglobin S (HbS) polymerization with the use of a new quantitative gelling technique. HbS gels fromed in the presence of nitrogen and dithionite (with or without carbon monoxide) at pH 7 in 0.15M phosphate were separated into sol and gel phases by centrifugation at 130,000 g. Hb concentration to the sol phase ([Hb]sol) of nonligated HbS was found to be constant (10.5 +/- 092 mM heme) over a range of original Hb concentrations from 11 to 17 mM at 24degrees C. This suggests that the HbS sol-gel equilibrium behaves as simple two-phase system. Increasing levels of total carbamylation from 0.65 to 3.65 moles CNO-/mole Hb tetramer (0.36 to 2.2 moles N-terminal/mole Hb4) progressively increases [Hb]sol. Specific activity of 14CNO-HbS was similar in the sol and gel phases, whereas COHbS appeared to be completely excluded from polymer structure of the gel. A comparison of the solubility of uncarbamylated and heavily carbamylated HbS at Co saturations ranging from 3 to 61 percent showed that the larges difference in [Hb]sol occured at the lowest ligand saturation rather than at intermediate states of ligation. Inhibition of HbS polymerization by carbamylation under these conditions, therefore, is not primarily the result of an effect on the T in equilibrium R comformational equilibrium. Our findings indicate that cyanate can interfere with HbS polymerization directly, possibly by alteration of surface binding sit(s) which are critical to aggregation. This direct action of cyanate may contribute significantly to the hematologic improvement achieved by cyanate treatment in sickle cell disease.

Anemia, Sickle Cell