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Biology subjects

Bode, E.

Publications and source records attributed to Bode, E..

3 recordsLinked to original sources

Acyl amides derived from a bacterial symbiont control development of its nematode host

Symbiotic bacteria frequently regulate host development through small-molecule signals. In the entomopathogenic Steinernema nematode - Xenorhabdus bacterium symbiosis, which is widely used in biological pest control, the signals that trigger nematode development have remained unknown. Using a phenotypic screen of Xenorhabdus mutants, we identified bacterial acyl amides, which we named stripteamides, as signals required for efficient recovery of Steinernema infective juveniles. Stripteamides are synthesized from phenylethylamine and activated fatty acid substrates by StaS, a previously uncharacterized amide synthase. Mechanistic and structural analyses indicate that StaS evolved from the initiation module of a nonribosomal peptide synthetase (NRPS) and was repurposed to generate signaling metabolites for host development. Stripteamide signaling is conserved across Xenorhabdus species and operates in different Steinernema hosts. These findings reveal a new function for widespread bacterial acyl amides that previously have been shown as cytotoxic and affecting bacterial quorum sensing, highlighting the context dependence of microbial natural product language.

microbiology↗

Identification of pseudotetraivprolide from Pseudomonas entomophila give novel insights into the biosynthesis of detoxin/rimosamide-like anti-antibiotics

Novel variants of known natural product (NP) classes might guide our understanding of biosynthesis, mode of action and potential application as drugs for all members of such NP classes. Here we describe a novel member of the widespread detoxine/rimosamide-like (DRL) natural products named pseudotetraivprolide from Pseudomonas strains, which has the characteristic DRL-activity of protecting Bacillus cereus against the antibiotic blasticidin S. The generation of several deletion and complemented mutants, heterologous expression experiments, identification and structure elucidation of several derivatives, chemical synthesis of main derivatives, enzymatic characterization of individual biochemical steps and detailed homology modelling of enzyme complexes were performed. This allowed us to show the primary metabolism-derived malonyl CoA-ACP transacylase (AT) FabD acting as trans-AT in the biosynthesis, suggest an order for all late-stage modifications and provide a function for the three conserved hypothetical proteins PipDFG acting as last-step acetylation complex thereby stabilizing the final product.

microbiology↗

Identification, structure and function of the methyltransferase involved in the biosynthesis of the dithiolopyrrolone antibiotic xenorhabdin

Xenorhabdins (XRDs) are produced by Xenorhabdus species and are members of the dithiopyrrolone (DTP) class of natural products that have potent antibacterial, antifungal and anticancer activity. The amide moiety of their DTP core can be methylated or not to fine-tune the bioactivity properties. However, the enzyme responsible for the amide N-methylation remained elusive. Here, we identified and characterized the amide methyltransferase XrdM that is encoded nearly 600 kb away from the XRD gene cluster using proteomic analysis, methyltransferase candidate screening, gene deletion, and allied approaches. In addition, crystallographic analysis and site-directed mutagenesis proved that XrdM is completely distinct from the recently reported DTP methyltransferase DtpM, and that both have been tailored in a species-specific manner for DTP biosynthesis in Gram-negative/positive organisms. Our study expands the limited knowledge of post-NRPS amide methylation in DTP biosynthesis and reveals the evolution of two structurally completely different enzymes for the same reaction in different organisms.

microbiology↗