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1.
Curr Opin Chem Biol ; 72: 102228, 2023 Feb.
Article in English | MEDLINE | ID: mdl-36402006

ABSTRACT

Ox-/thiazoline groups in nonribosomal peptides are formed by a variant of peptide-forming condensation domains called heterocyclization (Cy) domains and appear in a range of pharmaceutically important natural products and virulence factors. Recent cryo-EM, crystallographic, and NMR studies of Cy domains make it opportune to revisit outstanding questions regarding their molecular mechanisms. This review covers structural and dynamical findings about Cy domains that will inform future bioengineering efforts and our understanding of natural product synthesis.


Subject(s)
Peptide Synthases , Peptides , Cyclization , Peptide Synthases/metabolism , Protein Domains
2.
J Biol Chem ; 298(10): 102454, 2022 10.
Article in English | MEDLINE | ID: mdl-36063993

ABSTRACT

Nonribosomal peptide synthetase heterocyclization (Cy) domains generate biologically important oxazoline/thiazoline groups found in natural products, including pharmaceuticals and virulence factors such as some siderophores. Cy domains catalyze consecutive condensation and cyclodehydration reactions, although the mechanism is unknown. To better understand Cy domain catalysis, here we report the crystal structure of the second Cy domain (Cy2) of yersiniabactin synthetase from the causative agent of the plague, Yersinia pestis. Our high-resolution structure of Cy2 adopts a conformation that enables exploration of interactions with the extended thiazoline-containing cyclodehydration intermediate and the acceptor carrier protein (CP) to which it is tethered. We also report complementary electrostatic interfaces between Cy2 and its donor CP that mediate donor binding. Finally, we explored domain flexibility through normal mode analysis and identified small-molecule fragment-binding sites that may inform future antibiotic design targeting Cy function. Our results suggest how CP binding may influence global Cy conformations, with consequences for active-site remodeling to facilitate the separate condensation and cyclodehydration steps as well as potential inhibitor development.


Subject(s)
Catalytic Domain , Peptide Synthases , Yersinia pestis , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Carrier Proteins/metabolism , Peptide Synthases/chemistry , Peptide Synthases/metabolism , Siderophores/metabolism , Yersinia pestis/chemistry , Yersinia pestis/enzymology
3.
Biochem Biophys Res Commun ; 522(1): 107-112, 2020 01 29.
Article in English | MEDLINE | ID: mdl-31753487

ABSTRACT

Methyl sulfur compounds are a rich source of environmental sulfur for microorganisms, but their use requires redox systems. The bacterial sfn and msu operons contain two-component flavin-dependent monooxygenases for dimethylsulfone (DMSO2) assimilation: SfnG converts DMSO2 to methanesulfinate (MSI-), and MsuD converts methanesulfonate (MS-) to sulfite. However, the enzymatic oxidation of MSI- to MS- has not been demonstrated, and the function of the last enzyme of the msu operon (MsuC) is unresolved. We employed crystallographic and biochemical studies to identify the function of MsuC from Pseudomonas fluorescens. The crystal structure of MsuC adopts the acyl-CoA dehydrogenase fold with putative binding sites for flavin and MSI-, and functional assays of MsuC in the presence of its oxidoreductase MsuE, FMN, and NADH confirm the enzymatic generation of MS-. These studies reveal that MsuC converts MSI- to MS- in sulfite biosynthesis from DMSO2.


Subject(s)
Bacterial Proteins/metabolism , Pseudomonas fluorescens/enzymology , Sulfur/chemistry , Acyl-CoA Dehydrogenase/metabolism , Binding Sites , Crystallography, X-Ray , Dimerization , Dimethyl Sulfoxide/chemistry , Flavins/chemistry , Magnetic Resonance Spectroscopy , Mesylates/chemistry , Molecular Docking Simulation , Oxidoreductases/metabolism , Oxygen/chemistry , Protein Structure, Secondary , Structure-Activity Relationship , Sulfides/chemistry , Sulfones/chemistry , Thiophenes/chemistry
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