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Updated: Feb 6, 2026

Identification of Kinase-substrate Pairs Using High Throughput Screening
Published on: August 29, 2015
Substrate Specificity and Chemical Mechanism for the Reaction Catalyzed by Glutamine Kinase
Zane W Taylor1, Alexandra R Chamberlain2, Frank M Raushel1,2
1Department of Biochemistry and Biophysics , Texas A&M University , College Station , Texas 77843 , United States.
Abstract:
Campylobacter jejuni, a leading cause of gastroenteritis worldwide, has a unique O-methyl phosphoramidate (MeOPN) moiety attached to its capsular polysaccharide. Investigations into the biological role of MeOPN have revealed that it contributes to the pathogenicity of C. jejuni, and this modification is important for the colonization of C. jejuni. Previously, the reactions catalyzed by four enzymes (Cj1418-Cj1415) from C. jejuni that are required for the biosynthesis of the phosphoramidate modification have been elucidated. Cj1418 (l-glutamine kinase) catalyzes the formation of the initial phosphoramidate bond with the ATP-dependent phosphorylation of the amide nitrogen of l-glutamine. Here we show that Cj1418 catalyzes the phosphorylation of l-glutamine through a three-step reaction mechanism via the formation of covalent pyrophosphorylated ( Enz-X-Pβ-Pγ) and phosphorylated ( Enz-X-Pβ) intermediates. In the absence of l-glutamine, the enzyme was shown to catalyze a positional isotope exchange (PIX) reaction within β-[18O4]-ATP in support of the formation of the Enz-X-Pβ-Pγintermediate. In the absence of ATP, the enzyme was shown to catalyze a molecular isotope exchange (MIX) reaction between l-glutamine phosphate and [15N-amide]-l-glutamine in direct support of the Enz-X-Pβintermediate. The active site nucleophile has been identified as His-737 based on the lack of activity of the H737N mutant and amino acid sequence comparisons. The enzyme was shown to also catalyze the phosphorylation of d-glutamine, γ-l-glutamyl hydroxamate, γ-l-glutamyl hydrazide, and β-l-aspartyl hydroxamate, in addition to l-glutamine.
Insights
Campylobacter jejuni uses a unique O-methyl phosphoramidate modification for pathogenicity. This study reveals the three-step mechanism of Cj1418 (l-glutamine kinase) in forming this crucial phosphoramidate bond.
Area of Science:
- Microbiology
- Enzymology
- Biochemistry
Background:
- Campylobacter jejuni causes widespread gastroenteritis.
- A unique O-methyl phosphoramidate (MeOPN) moiety on its capsule is vital for C. jejuni pathogenicity and colonization.
- Four enzymes, including Cj1418, are essential for MeOPN biosynthesis.
Purpose of the Study:
- To elucidate the reaction mechanism of Cj1418 (l-glutamine kinase) in the biosynthesis of the phosphoramidate modification.
- To identify the active site nucleophile of Cj1418.
- To determine the substrate specificity of Cj1418.
Main Methods:
- Enzyme kinetics and mechanism studies using Cj1418.
- Positional Isotope Exchange (PIX) and Molecular Isotope Exchange (MIX) reactions with labeled ATP and l-glutamine.
- Site-directed mutagenesis (H737N) to identify the active site nucleophile.
- Substrate specificity assays.
Main Results:
- Cj1418 catalyzes l-glutamine phosphorylation via a three-step mechanism involving covalent pyrophosphorylated and phosphorylated intermediates.
- Positional isotope exchange (PIX) and molecular isotope exchange (MIX) reactions confirmed the proposed mechanism.
- Histidine-737 (His-737) was identified as the active site nucleophile.
- Cj1418 phosphorylates various glutamine and aspartate analogs in addition to l-glutamine.
Conclusions:
- The study details the intricate three-step catalytic mechanism of Cj1418 in phosphoramidate bond formation.
- Identification of His-737 as the active site nucleophile provides insight into enzyme-substrate interactions.
- Understanding Cj1418's mechanism and substrate specificity can inform strategies against C. jejuni infections.
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