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Updated: Aug 15, 2026

Enzymatic Cascade Reactions for the Synthesis of Chiral Amino Alcohols from L-lysine
Published on: February 16, 2018
Altering the reaction specificity of eukaryotic ornithine decarboxylase
L K Jackson1, H B Brooks, A L Osterman
1Department of Pharmacology and Department of Biochemistry, The University of Texas Southwestern Medical Center at Dallas, 5323 Harry Hines Boulevard, Dallas, Texas 75390-9041, USA.
Abstract:
Ornithine decarboxylase (ODC) catalyzes the first committed step in the biosynthesis of polyamines, and it has been identified as a drug target for the treatment of African sleeping sickness, caused by Trypanosoma brucei. ODC is a pyridoxal 5'-phosphate (PLP) dependent enzyme and an obligate homodimer. X-ray structural analysis of the complex of the T. brucei wild-type enzyme with the product putrescine reveals two structural changes that occur upon ligand binding: Lys-69 is displaced by putrescine and forms new interactions with Glu-94 and Asp-88, and the side chain of Cys-360 rotates into the active site to within 3.4 A of the imine bond. Mutation of Cys-360 to Ala or Ser reduces the k(cat) of the decarboxylation reaction by 50- and 1000-fold, respectively. However, HPLC analysis of the products demonstrates that the mutant enzymes almost exclusively catalyze a decarboxylation-dependent transamination reaction to form pyridoxamine 5-phosphate (PMP) and gamma-aminobutyraldehyde, instead of PLP and putrescine. This side reaction arises when the decarboxylated substrate intermediate is protonated at C4' of PLP instead of at the C(alpha) of substrate. For the reaction catalyzed by the wild-type enzyme, this side reaction occurs infrequently (<0.01% of the turnovers). Single turnover analysis and multiwavelength stopped-flow spectroscopic studies suggest that for the mutant ODCs protonation at C4' occurs either very rapidly or in a concerted reaction with decarboxylation and that the rate-limiting step in the steady-state reaction is Schiff base hydrolysis/product release. These studies demonstrate a role for Cys-360 in the control of the C(alpha) protonation step that catalyzes the formation of the physiological product putrescine. The results further provide insight into the mechanism by which this class of PLP-dependent enzymes controls reaction specificity.
Insights
Ornithine decarboxylase (ODC) is a drug target for sleeping sickness. Cysteine-360 is crucial for ODC
Area of Science:
- Biochemistry
- Enzymology
- Parasitology
Background:
- Ornithine decarboxylase (ODC) is a key enzyme in polyamine biosynthesis and a drug target for African sleeping sickness.
- ODC is a pyridoxal 5'-phosphate (PLP)-dependent enzyme and an obligate homodimer.
- Structural and mechanistic studies of T. brucei ODC provide insights into enzyme function and drug development.
Purpose of the Study:
- To investigate the structural and functional role of Cysteine-360 (Cys-360) in Trypanosoma brucei Ornithine Decarboxylase (T. brucei ODC).
- To elucidate the mechanism by which ODC controls reaction specificity.
- To understand ligand binding effects on ODC structure and activity.
Main Methods:
- X-ray structural analysis of T. brucei ODC complexed with putrescine.
- Site-directed mutagenesis of Cys-360 to Alanine (Ala) and Serine (Ser).
- Enzyme kinetics (kcat determination) and product analysis using High-Performance Liquid Chromatography (HPLC).
- Single turnover analysis and multiwavelength stopped-flow spectroscopy.
Main Results:
- Ligand binding induces structural changes, including Lys-69 displacement and Cys-360 side chain rotation into the active site.
- Mutation of Cys-360 significantly reduces catalytic activity (kcat) and alters reaction specificity.
- Mutant ODCs predominantly catalyze a transamination side reaction, indicating Cys-360's role in controlling substrate protonation.
- Spectroscopic studies suggest altered protonation and Schiff base hydrolysis steps in mutant enzymes.
Conclusions:
- Cysteine-360 plays a critical role in controlling the C(alpha) protonation step, ensuring the formation of the physiological product, putrescine.
- The findings provide significant insight into the reaction mechanism of PLP-dependent enzymes and how specificity is achieved.
- Understanding ODC's mechanism is vital for developing targeted therapies against African sleeping sickness.
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