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May 29, 2026Journal of the American Chemical Society0 citationsOpen Access

Structural and Spectroscopic Basis for Catalysis by a Class C Radical S -Adenosylmethionine Methylase Involved in Nosiheptide/Nocathiacin Biosynthesis

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BWBo WangHKHayley KnoxNYNicholas J. York

Key Points

  • To explore the structural and spectroscopic basis of catalysis by the class C radical S-adenosylmethionine methylase NosN involved in Nosiheptide biosynthesis.
  • Obtained three X-ray crystal structures of NocN at resolutions of 1.40 Å, 1.84 Å, and 1.78 Å under anaerobic conditions.
  • Conducted electron paramagnetic resonance spectroscopy to identify paramagnetic species associated with substrate engagement.
  • Analyzed the positioning of SAM molecules and identified key catalytic residues.
  • Identified clear electron density for two bound SAM molecules in the structure of NocN.
  • Noted the spatial arrangement of the C5' atom from SAMI for potential hydrogen atom abstraction.
  • Observed a paramagnetic species consistent with the addition of the SAMII-derived methylene radical to the MIA substrate.

Abstract

Nosiheptide (NOS) is a ribosomally synthesized and post-translationally modified peptide natural product that exhibits potent antibiotic activity against multiple bacterial pathogens. NOS features a core macrocyclic peptide containing thiazoles, dehydrated serine and threonine residues, and a 3-hydroxypyridine ring. In addition to the macrocycle, NOS possesses a side-ring system formed by a 3-methyl-2-indolic acid (MIA) bridge that connects to glutamyl and cysteinyl residues on the core peptide via ester and thioester linkages. This unique side-ring is installed by the class C radical S-adenosylmethionine (SAM) methylase NosN. Here, we report three X-ray crystal structures of the NosN homologue, NocN, at resolutions of 1.40 Å, 1.84 Å, and 1.78 Å under anaerobic conditions, representing the first structural characterization of a class C radical SAM methylase. The structures reveal clear electron density for two bound SAM molecules. Remarkably, the C5′ atom of SAMI, which coordinates to the Fe4S4 cluster, lies 3.5 Å from the methyl group of SAMII and is properly positioned for direct hydrogen atom abstraction. A structure containing a product mimic illustrates how NocN engages its substrate and identifies Tyr276 as a key catalytic residue. The structure further suggests that the sulfonium center of SAMII may undergo epimerization to facilitate radical attack. Finally, electron paramagnetic resonance spectroscopy identifies a paramagnetic species consistent with the addition of the SAMII-derived methylene radical to the MIA substrate.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/6a192ee7fab5b468c4418396https://doi.org/10.1021/jacs.6c03999
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