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ACTIVE-SITE-DIRECTED IRREVERSIBLE INHIBITORS OF ISOPENTENYL DIPHOSPHATE ISOMERASE

Posted on:1988-01-28Degree:Ph.DType:Dissertation
University:The University of UtahCandidate:MUHLBACHER, MANFREDFull Text:PDF
GTID:1470390017957569Subject:Chemistry
Abstract/Summary:
Seven analogues of isopentenyl diphosphate, containing fluorine, epoxy, or ammonium functionalities were found to irreversibly inhibit isopentenyl diphosphate:dimethylallyl diphosphate isomerase isolated from the mold Claviceps purpurea. The mechanism of their inhibition of isomerase was studied.; Syntheses of 3-(fluoromethyl)-3-buten-1-yl diphosphate, 2-dimethylamino-1-ethyl diphosphate, 3,4-epoxy-3-methyl-1-butyl diphosphate, 3,4-epoxy-1-butyl diphosphate, and 2,3-epoxy-3-methyl-1-butyl diphosphate were developed and carried out in high overall yield affording 100 mg quantities of the triammonium diphosphate salts. Radiolabelled materials of these analogues with ('3)H, ('14)C, and ('32)P at appropriate positions were also prepared.; Inactivation kinetics, substrate protection studies, and labelling experiments demonstrated that the analogues interact stoichiometrically with the active-site of isomerase. Radioactive enzyme-inactivator complexes were isolated, that are stable to extended dialysis and chaotropic reagents. The complexes resulting from inactivation of the enzyme by 3-(fluoromethyl)-3-buten-1-yl diphosphate and 3,4-epoxy-3-methyl-1-butyl diphosphate are stable to ion exchange chromatography and gel electrophoresis. Stoichiometric fluoride ion release occurs during inactivation of isomerase with 3-(fluoromethyl)-3-buten-1-yl diphosphate. The complexes are not stable to high concentrations of mixtures of 2-mercaptoethanol-sodium dodecyl sulfate. The radiolabelled 2-dimethylamino-1-ethyl diphosphate isomerase complex loses radioactivity almost instantaneously when treated with base. Partial fragmentation of the inactivator molecule was observed. The results are discussed in regard to the mechanism of inactivation of isomerase and its implication on an intermediate proposed for the mechanism of the normal enzymatic reaction.
Keywords/Search Tags:Diphosphate, Isomerase, Inactivation
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