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Orotidine Monophosphate Decarboxylase

Orotidine Monophosphate Decarboxylase
Author: Jeehiun K. Lee
Publisher: Springer Science & Business Media
Total Pages: 172
Release: 2004-06-25
Genre: Science
ISBN: 9783540205661

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K.N. Houk, D.J. Tantillo, C. Stanton, Y. Hu: What Has Theory and Crystallography Revealed About the Mechanism of Catalysis by Orotidine Monophosphate Decarboxylase?N. Wu, E.F. Pai: Crystallographic Studies of Native and Mutant Orotidine 5'Phosphate Decarboxylases; B.G.


Investigations Into the Mechanism of Orotidine 5'-monophosphate Decarboxylase: Sources of Substrate Destabilization and Transition State Stabilization

Investigations Into the Mechanism of Orotidine 5'-monophosphate Decarboxylase: Sources of Substrate Destabilization and Transition State Stabilization
Author: Vanessa A. Iiams
Publisher:
Total Pages:
Release: 2011
Genre:
ISBN:

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Orotidine 50́ø-monophosphate decarboxylase (OMPDC) achieves a rarely paralleled rate acceleration, yet the catalytic basis prompting this enhancement have yet to be fully elucidated. To accomplish decarboxylation, OMPDC must overcome the high energy barrier due to the localized anionic charge of the intermediate. Mechanistic studies employing enzyme mutagenesis and product or intermediate analogues were used to investigate possible transition state stabilization by a carbene resonance structure. Viability of the carbene structure depends upon a key hydrogen bond between O4 of the substrate and the amide backbone of a conserved serine or threonine. Substitution of the conserved residue with Pro resulted in a kcat/KM of 1 M-1s-1; deletion of the FUMP O4 resulted in a product analogue that does not undergo H6 exchange or inhibit decarboxylation. Hence, indirect evidence reveals the O4-backbone interaction plays an important role for binding and catalysis. OMPDC likely has honed multiple mechanisms to attain its remarkable catalysis. The successful crystallizations of OMPDC a decade ago sparked hypotheses that structure and sequence conserved residues induced productive strain on the substrate-enzyme complex. Here, we demonstrate a new source of stress: a hydrophobic pocket adjacent to the OMP carboxylate that exhibits kinetic parameters characteristic of substrate destabilization. Substitution of these residues with hydrophilic side-chains, by providing hydrogen-bonding partners, decreased kcat by 10 to 10^40́3fold. The same substitutions display very little change in the rate of product H6 exchange, supporting that this hydrophobic pocket affects the substrate-enzyme complex before the transition state. We also provide evidence that hydrophilic residues can insert water molecules into the pocket with detrimental effects to catalysis.


Catalysis of Orotidine 5'-Monophosphate

Catalysis of Orotidine 5'-Monophosphate
Author: Diana Shem
Publisher: LAP Lambert Academic Publishing
Total Pages: 68
Release: 2011-06
Genre:
ISBN: 9783844380880

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As a model for interactions present in the active site of orotidine-5 - monophosphate decarboxylase (ODCase), we investigated the effects of substrate destabilization by a nearby negative charge and stabilization of the carbanion intermediate, due to hydrogen bonds to the carbonyl groups (O-2 and O-4) of orotic acid and its decarboxylation product, using ab initio calculations. Results from these models were comparable with available data, suggesting that the magnitude of the decarboxylation rate enhancement depends on a combination of the charge distance and hydrogen bonding effects. We found that the dipole moment of the proton donor may also play a significant role, implying that the key to the rest of the catalysis lie within the specific interactions of the substrate and the surrounding residues.


Synthesis of Orotidine-5'-monophosphate Modifications for the Study of the Catalytic Activity of the Enzyme Orotidine-5'-monophosphate Decarboxylase

Synthesis of Orotidine-5'-monophosphate Modifications for the Study of the Catalytic Activity of the Enzyme Orotidine-5'-monophosphate Decarboxylase
Author: Tobias Schmidt
Publisher:
Total Pages:
Release: 2022
Genre:
ISBN:

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In this thesis, the synthesis of OMPD substrate analogs was investigated to further elucidate the mechanism of the OMPD. As inhibiting molecules, 6-thioamido UMP, OMP methyl ester, reduced OMP, and nonpolar substituted UMPs (6-methyl, 6-ethyl, 6-isopropenyl) were synthesized. The synthesized substrate analogs were obtained in high purity after HPLC purification as bis(triethylammonium) salts which were soaked into pre-crystallized resting state crystals of the OMPD (human, wild type) and analyzed via x-ray crystallography. The obtained crystal structures of the synthesized ligands of OMPD w...