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Structural Insights into the Protein Mannosyltransferase from Mycobacterium tuberculosis reveal a WW-Domain-Like
Nicolas Géraud1, Chloé Rivière1, Camille Falcou2
1Institut de Pharmacologie et de Biologie Structurale, IPBS, Université de Toulouse, CNRS, Université Toulouse III, Toulouse, France.
Abstract:
We have previously demonstrated that protein-O-mannosylation (POM), a widespread post-translational glycosyl modification of proteins, is a key virulence factor of Mycobacterium tuberculosis (Mtb), the world's deadliest infectious agent. Here, we report a detailed analysis of the structure-function relationship of MtPMT, the enzyme that catalyzes POM in Mtb. Using mutagenesis and in cellulo monitoring of POM activity, we demonstrate that, despite notable structural differences, MtPMT shares functional homologies with yeasts' PMTs in the mechanism of the sugar transfer from lipidic donors. Furthermore, we provide evidence that the selectivity for proline-rich target glycosylation sites that differentiates MtPMT from its eukaryotic homologues, relies on a WW-like domain, which preferentially interacts with proline-rich acceptor substrate analogues. This first identification of a functional WW-like domain in a prokaryotic protein raises questions about its potential evolutionary linkage with eukaryotic WW modules and provides new insights into PMT's acceptor-substrate recognition mechanism paving the way for the development selective inhibitors of MtPMT with potential therapeutic application against tuberculosis.
Insights
Mycobacterium tuberculosis protein-O-mannosylation (POM) is vital for virulence. Researchers analyzed the MtPMT enzyme, finding it shares sugar transfer mechanisms with yeast PMTs but uses a unique WW-like domain for proline-rich site selection, aiding tuberculosis drug development.
Area of Science:
- Microbiology
- Biochemistry
- Structural Biology
Background:
- Protein-O-mannosylation (POM) is a crucial post-translational modification in Mycobacterium tuberculosis (Mtb), identified as a key virulence factor.
- MtPMT is the Mtb enzyme responsible for catalyzing POM.
Purpose of the Study:
- To elucidate the structure-function relationship of MtPMT.
- To understand the mechanism of POM in Mtb and its substrate recognition.
- To explore potential therapeutic targets for tuberculosis.
Main Methods:
- Site-directed mutagenesis of MtPMT.
- In cellulo monitoring of POM activity.
- Analysis of substrate analogue interactions.
Main Results:
- MtPMT shares functional homologies with yeast PMTs in sugar transfer mechanisms.
- A WW-like domain in MtPMT confers selectivity for proline-rich glycosylation sites.
- This WW-like domain preferentially interacts with proline-rich acceptor substrate analogues.
Conclusions:
- The identification of a functional WW-like domain in a prokaryotic protein offers insights into its evolutionary origins.
- Understanding MtPMT's substrate recognition mechanism is crucial for developing targeted inhibitors.
- Selective MtPMT inhibitors hold potential for novel anti-tuberculosis therapies.
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