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Updated: Jan 26, 2026

In Vitro Analysis of E3 Ubiquitin Ligase Function
Published on: May 14, 2021
Mycobacterial ubiquitin-like protein ligase PafA follows a two-step reaction pathway with a phosphorylated pup
Ethan Guth1, Michael Thommen, Eilika Weber-Ban
1Institute of Molecular Biology & Biophysics, ETH Zurich, CH-8093 Zurich, Switzerland.
Abstract:
In Mycobacterium tuberculosis, the enzyme PafA is responsible for the activation and conjugation of the proteasome-targeting molecule Pup to protein substrates. As the proteasomal pathway has been shown to be vital to the persistence of M. tuberculosis, understanding the reaction mechanism of PafA is critical to the design of antituberculous agents. In this study, we have developed novel techniques to study the activity of PafA and have characterized fundamental features of the reaction mechanism. We show that PafA catalyzes a two-step reaction mechanism proceeding through a γ-glutamyl phosphate-mixed anhydride intermediate that is formed on the C-terminal glutamate of Pup before transfer of Pup to the substrate acceptor lysine. SDS-PAGE analysis of formation of the phosphorylated intermediate revealed that the rate of Pup activation matched the maximal steady-state rate of product formation in the overall reaction and suggested that Pup activation was rate-limiting when all substrates were present at saturating concentrations. Following activation, both ADP and the phosphorylated intermediate remained associated with the enzyme awaiting nucleophilic attack by a lysine residue of the target protein. The PafA reaction mechanism appeared to be noticeably biased toward the stable activation of Pup in the absence of additional substrate and required very low concentrations of ATP and Pup relative to other carboxylate-amine/ammonia ligase family members. The bona fide nucleophilic substrate PanB showed a 3 orders of magnitude stronger affinity than free lysine, promoting Pup conjugation to occur close to the rate limit of activation with physiologically relevant concentrations of substrate.
Insights
Mycobacterium tuberculosis enzyme PafA activates the proteasome-targeting molecule Pup via a two-step mechanism involving a mixed anhydride intermediate. Understanding this pathway is crucial for developing new tuberculosis treatments.
Area of Science:
- Biochemistry
- Molecular Biology
- Microbiology
Background:
- The proteasomal pathway is essential for Mycobacterium tuberculosis persistence.
- The enzyme PafA mediates the activation and conjugation of Pup, a proteasome-targeting molecule, to protein substrates.
Purpose of the Study:
- To elucidate the reaction mechanism of PafA.
- To characterize fundamental features of PafA's catalytic activity.
- To provide insights for designing novel antitubercular agents.
Main Methods:
- Development of novel techniques to study PafA activity.
- SDS-PAGE analysis to monitor intermediate formation.
- Enzyme kinetics and substrate affinity studies.
Main Results:
- PafA catalyzes a two-step reaction via a γ-glutamyl phosphate-mixed anhydride intermediate.
- Pup activation is rate-limiting under saturating substrate conditions.
- The enzyme exhibits high affinity for its substrate PanB, facilitating efficient Pup conjugation.
Conclusions:
- The PafA reaction mechanism involves stable Pup activation and requires low substrate concentrations.
- Understanding PafA's mechanism is critical for developing targeted antitubercular therapies.
- The enzyme's substrate specificity and catalytic efficiency are key features for Pup conjugation.
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