The symbiotic bacterium Photorhabdus is a rich source of bioactive secondary metabolites that mediate tripartite interactions with nematodes and insect hosts. However, natural products of ribosomal origin remain largely underexplored within this ecological niche. Here, we report the identification of aphotorhaptin A, a darobactin-like peptide (daropeptide) natural product from Photorhabdus asymbiotica, which structurally features an ether crosslink and an N-terminal acetyl unit. Biosynthetic investigation uncovers aphotorhaptin A is matured via an unexpected leader cleavage step, and the subsequent N-terminal acetylation confers metabolic stability that maintains the hexapeptide scaffold integrity. Biochemical and structural studies demonstrate the acetyltransferase PasC exhibits remarkable substrate promiscuity, facilitated by an expansive active-site cavity that accommodates diverse acyl-CoA donors and peptide substrates. Unlike the antimicrobial darobactin, aphotorhaptin A appears to lack antibacterial activity but modulates nematode development, and this activity requires the ether crosslink and the N-terminal acetyl group in the hexapeptide scaffold. These findings expand the chemical and biosynthetic space of ribosomal peptide family and establish its link with nematode development and reproduction.
Suze Ma, Ru Li, Xiangyang Gao et al.· Proceedings of the National...· 0 citations
Polyketides are a structurally diverse class of natural products with immense therapeutic potential. However, the biosynthetic output of discrete polyketide synthases (PKSs) has been constrained by a fundamental functional limitation: unlike modular Type I systems, discrete PKS systems typically lack integrated enoyl reductase (ER) activity. This constraint restricts their chemical repertoire primarily to unsaturated polyenes or aromatic scaffolds. Here, we characterize PbrC16, a FabV-family ER from a manumycin-type biosynthetic gene cluster (BGC) in Peterkaempfera bronchialis. This enzyme represents the first experimentally validated ER capable of functioning within discrete PKS architectures. In vitro biochemical reconstitution demonstrates that PbrC16 along with its homologue ScFabV catalyze iterative enoyl reductions in both β-ketoacyl–acyl carrier protein synthase III (KAS III)-dependent and highly reducing (HR) Type II PKS contexts, enabling the complete saturation of long-chain polyketide intermediates. Structural and computational analyses reveal the molecular basis for its exceptional substrate promiscuity and versatile acyl carrier protein (ACP) recognition. These findings resolve a long-standing “reductive gap” in discrete PKS biology and provide a “plug-and-play” module for the rational engineering of saturated polyketide scaffolds.
Yan Gao, Kai Jiang, Yuhan Dai et al.· Journal of the American Chem...· 0 citations