Abstract

Elevated production of the matrix glycosaminoglycan hyaluronan is strongly implicated in epithelial tumor progression. Inhibition of synthesis of the hyaluronan precursor UDP-glucuronic acid (UDP-GlcUA) therefore presents an emerging target for cancer therapy. Human UDP-glucose 6-dehydrogenase (hUGDH) catalyzes, in two NAD+-dependent steps without release of intermediate aldehyde, the biosynthetic oxidation of UDP-glucose (UDP-Glc) to UDP-GlcUA. Here, we present a structural characterization of the hUGDH reaction coordinate using crystal structures of the apoenzyme and ternary complexes of the enzyme bound with UDP-Glc/NADH and UDP-GlcUA/NAD+. The quaternary structure of hUGDH is a disc-shaped trimer of homodimers whose subunits consist of two discrete α/β domains with the active site located in the interdomain cleft. Ternary complex formation is accompanied by rigid-body and restrained movement of the N-terminal NAD+ binding domain, sequestering substrate and coenzyme in their reactive positions through interdomain closure. By alternating between conformations in and out of the active site during domain motion, Tyr14, Glu161, and Glu165 participate in control of coenzyme binding and release during 2-fold oxidation. The proposed mechanism of hUGDH involves formation and breakdown of thiohemiacetal and thioester intermediates whereby Cys276 functions as the catalytic nucleophile. Stopped-flow kinetic data capture the essential deprotonation of Cys276 in the course of the first oxidation step, allowing the thiolate side chain to act as a trap of the incipient aldehyde. Because thiohemiacetal intermediate accumulates at steady state under physiological reaction conditions, hUGDH inhibition might best explore ligand binding to the NAD+ binding domain.

Highlights

  • UDP-glucuronic acid (UDP-GlcUA)2 fulfills a range of vitally important functions in human physiology

  • Four-electron enzymatic oxidation of UDP-Glc is complex and involves the consecutive activities of alcohol dehydrogenase and aldehyde dehydrogenase, both recruited from a single UDP-glucose 6-dehydrogenase (UGDH) catalytic center

  • Kinetic parameters for human UGDH (hUGDH) and mutants thereof determined at 25 °C and pH 7.5

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Summary

Introduction

UDP-glucuronic acid (UDP-GlcUA)2 fulfills a range of vitally important functions in human physiology. Considering that the apo-hexamer has ϳ12% more exposed surface area than the average surface area of the hexameric ternary complex (103,170 versus 91880 Å2), it is plausible that the crystallographically observed conformational rearrangement of hUGDH upon ternary complex formation is due to binding of NADϩ to enzyme/UDP-Glc, and the resulting compaction of the active site confers this extra stability to the protein structure.

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