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Calderari, A.

Publications and source records attributed to Calderari, A..

2 recordsLinked to original sources

Total Biosynthesis of Pseudomonas aeruginosa-Derived Azabicyclocarbamates Identifies Distinct Dehydrating Condensation Family Proteins

Bacterial azabicyclocarbamates and related pyrrolizidine alkaloids play important roles in microbial interactions, and are scaffolds of therapeutic potential. Their biosynthesis involves a bimodular non-ribosomal peptide synthetase (NRPS), as well as a Baeyer-Villiger monooxygenase and tailoring enzymes, the latter contributing to the structural diversification of these compounds. Azetidomonamide A, a core metabolite produced by the major human opportunistic pathogen Pseudomonas aeruginosa, is a rare 4,7-bicyclocarbamate involved in modulating bacterial virulence that belongs to a unique family of natural products targeting ClpP proteases. In this study, we elucidated the full set of reactions leading to the 7-membered cyclocarbamate warhead, and reconstituted in vitro the biosynthesis of azetidomonamide A. Notably, this approach allowed for detailed characterization of a condensation (C) domain-catalyzed online dehydration via chemical capture of NRPS-tethered intermediates. Furthermore, we identified the dehydratase AzeD as the founding member of a distinct group of standalone proteins of the C domain family. Via combined structural, docking and biochemical analyses, we provided evidence that AzeDs catalytic mechanism is distinct from that of dehydrating C domains, further expanding the known chemistry of these key biosynthetic enzymes.

biochemistry↗

Derivatization of the non-ribosomal peptide pyrrolizixenamide using NRPS engineering

Pyrrolizidine alkaloids (PA) are well-known and widespread natural products from plants, which have also been identified in several different bacteria. In the latter case, the core structure is constructed by a non-ribosomal peptide synthetase (NRPS), which then undergoes oxidative ring contraction catalyzed by a Baeyer-Villiger monooxygenase. By deploying various NRPS engineering strategies, we have successfully generated five novel peptides carrying the unusual PA moiety at their C-terminus. Nonetheless, efforts to obtain a larger library of PAs were unsuccessful. Combined computational modelling and docking experiments suggest that this failure stems from the strict specificity of the thioesterase (TE) domain at the end of the NRPS, which discriminates against peptides carrying more than two amino acids. Our work thus suggests protein design strategies by which this intrinsic limitation to NRPS engineering may be overcome in future.

biochemistry↗