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Updated: Mar 8, 2026

In-vitro Reconstitution of Bacterial Ubiquitination and VCP/p97-mediated Elimination
Published on: January 2, 2026
Prokaryotic ubiquitin-like protein remains intrinsically disordered when covalently attached to proteasomal target
Jonas Barandun1,2, Fred F Damberger1, Cyrille L Delley1
1ETH Zurich, Institute of Molecular Biology & Biophysics, Zürich, CH-8093, Switzerland.
Background:
The post-translational modification pathway referred to as pupylation marks proteins for proteasomal degradation in Mycobacterium tuberculosis and other actinobacteria by covalently attaching the small protein Pup (prokaryotic ubiquitin-like protein) to target lysine residues. In contrast to the functionally analogous eukaryotic ubiquitin, Pup is intrinsically disordered in its free form. Its unfolded state allows Pup to adopt different structures upon interaction with different binding partners like the Pup ligase PafA and the proteasomal ATPase Mpa. While the disordered behavior of free Pup has been well characterized, it remained unknown whether Pup adopts a distinct structure when attached to a substrate.
Results:
Using a combination of NMR experiments and biochemical analysis we demonstrate that Pup remains unstructured when ligated to two well-established pupylation substrates targeted for proteasomal degradation in Mycobacterium tuberculosis, malonyl transacylase (FabD) and ketopantoyl hydroxylmethyltransferase (PanB). Isotopically labeled Pup was linked to FabD and PanB by in vitro pupylation to generate homogeneously pupylated substrates suitable for NMR analysis. The single target lysine of PanB was identified by a combination of mass spectroscopy and mutational analysis. Chemical shift comparison between Pup in its free form and ligated to substrate reveals intrinsic disorder of Pup in the conjugate.
Conclusion:
When linked to the proteasomal substrates FabD and PanB, Pup is unstructured and retains the ability to interact with its different binding partners. This suggests that it is not the conformation of Pup attached to these two substrates which determines their delivery to the proteasome, but the availability of the degradation complex and the depupylase.
Insights
Prokaryotic ubiquitin-like protein (Pup) remains unstructured when attached to its substrates, FabD and PanB. This intrinsic disorder is key for Pup
Area of Science:
- Molecular Biology
- Biochemistry
- Structural Biology
Background:
- Pupylation is a post-translational modification crucial for proteasomal degradation in Mycobacterium tuberculosis.
- Unlike eukaryotic ubiquitin, prokaryotic ubiquitin-like protein (Pup) is intrinsically disordered in its free state.
- The structural flexibility of Pup allows interaction with various binding partners.
Purpose of the Study:
- To investigate the structural conformation of Pup when covalently attached to its substrates.
- To determine if Pup adopts a distinct structure upon ligation to target proteins for degradation.
Main Methods:
- Nuclear Magnetic Resonance (NMR) spectroscopy was employed to analyze Pup structure.
- Biochemical analyses, including in vitro pupylation, were performed on pupylated substrates.
- Mass spectrometry and mutational analysis were used to identify pupylation sites.
Main Results:
- Pup remains intrinsically disordered when ligated to the proteasomal substrates FabD and PanB.
- NMR chemical shift comparisons confirmed the unstructured nature of Pup in the pupylated conjugate.
- Pup retains its ability to interact with binding partners even when attached to substrates.
Conclusions:
- The conformation of Pup attached to substrates does not dictate proteasomal delivery.
- Substrate delivery to the proteasome is regulated by the availability of the degradation complex and depupylase.
- Intrinsic disorder of Pup is maintained upon substrate ligation, facilitating interactions within the pupylation pathway.
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