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PMID: 14756553 Published · ppublish English Comparative Study Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S. Research Support, U.S. Gov't, P.H.S.

Structural insights into the human and avian IMP cyclohydrolase mechanism via crystal structures with the bound XMP inhibitor.

Biochemistry ·Vol. 43 ·No. 5 ·2004-02-10 ·Pages 1171-83

Wolan DW, Cheong CG, Greasley SE, Wilson IA

Abstract

Within de novo purine biosynthesis, the AICAR transformylase and IMP cyclohydrolase activities of the bifunctional enzyme ATIC convert the intermediate AICAR to the final product of the pathway, IMP. Identification of the AICAR transformylase active site and a proposed formyl transfer mechanism have already resulted from analysis of crystal structures of avian ATIC in complex with substrate and/or inhibitors. Herein, we focus on the IMPCH active site and the cyclohydrolase mechanism through comparison of crystal structures of XMP inhibitor complexes of human ATIC at 1.9 A resolution with the previously determined avian enzyme. This first human ATIC structure was also determined to ascertain whether any subtle structural differences, compared to the homologous avian enzyme, should be taken into account for structure-based inhibitor design. These structural comparisons, as well as comparative analyses with other IMP and XMP binding proteins, have enabled a catalytic mechanism to be formulated. The primary role of the IMPCH active site appears to be to induce a reconfiguration of the substrate FAICAR to a less energetically favorable, but more reactive, conformer. Backbone (Arg64 and Lys66) and side chain interactions (Thr67) in the IMPCH active site reorient the 4-carboxamide from the preferred conformer that binds to the AICAR Tfase active site to one that promotes intramolecular cyclization. Other backbone amides (Ile126 and Gly127) create an oxyanion hole that helps orient the formyl group for nucleophilic attack by the 4-carboxamide amine and then stabilize the anionic intermediate. Several other residues, including Lys66, Tyr104, Asp125, and Lys137', provide substrate specificity and likely enhance the catalytic rate through contributions to acid-base catalysis.

MeSH Terms
Amino Acid Sequence Aminoimidazole Carboxamide/analogs & derivatives,chemistry Animals Apoenzymes/antagonists & inhibitors,chemistry Binding Sites Birds Crystallization Crystallography, X-Ray Enzyme Inhibitors/chemistry Humans Hydroxymethyl and Formyl Transferases/chemistry IMP Dehydrogenase/chemistry Molecular Sequence Data Nucleic Acid Conformation Nucleotide Deaminases/antagonists & inhibitors,chemistry Phosphoribosylaminoimidazolecarboxamide Formyltransferase Protein Conformation Recombinant Proteins/antagonists & inhibitors,chemistry Ribonucleotides/chemistry Xanthine
Chemicals
Apoenzymes Enzyme Inhibitors Recombinant Proteins Ribonucleotides Xanthine Aminoimidazole Carboxamide xanthosine monophosphate IMP Dehydrogenase Hydroxymethyl and Formyl Transferases Phosphoribosylaminoimidazolecarboxamide Formyltransferase Nucleotide Deaminases IMP cyclohydrolase AICA ribonucleotide
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Wolan Dennis W
Department of Molecular Biology and The Skaggs Institute for Chemical Biology, The Scripps Research Institute, 10550 North Torrey Pines Road, La Jolla, California 92037, USA.
Cheong Cheom-Gil
Greasley Samantha E
Wilson Ian A
Article Info
Journal
Biochemistry
Abbr.
Biochemistry
ISSN
0006-2960
Published
2004-02-10
Pages
1171-83
Language
English
Region
United States
NLM ID
0370623
Subset
IM
Grants
NCI NIH HHS · P01 CA63536 · United States
Databases
PDB
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