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Chlorinated chaetoviridin-type azaphilones discovered via metabolomics: structural diversity and suppression of STAT3 signaling in gastric cancer cells.

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Azaphilones are structurally diverse polyketides with broad bioactivities, among which chaetoviridins are distinguished by their chlorinated frameworks and anticancer potential. To expand the chemical space of STAT3-relevant azaphilones, a metabolomics strategy integrated with OSMAC (one strain many compounds) fermentation was applied to a deep-sea Chaetomium globosum strain. Metabolomic analysis revealed pronounced metabolic divergence, with chlorinated metabolites as key discriminants. Molecular networking further localized these features into clusters associated with chaetoviridin-type scaffolds. Guided by this workflow, twelve new chaetoviridin-type azaphilones were isolated, including an unprecedented dichlorinated methyl-acetal, pyran- and isochromene-type derivatives, and a series of N-isoquinolinone congeners, along with five known analogues. Their structures feature a conserved azaphilone-derived 6/6/5 tricyclic core with diverse oxygenated and nitrogenated substituents. Structural assignments were accomplished using NMR, HRESIMS, X-ray diffraction, and TDDFT-ECD calculations. Several compounds exhibited cytotoxicity against gastric cancer cells, with compound 1 showing the most potent activity. Compound 1 engages STAT3 in cells, suppressing Tyr705 phosphorylation and thereby blocking nuclear translocation and STAT3-dependent transcription to suppress gastric cancer cell proliferation, migration, and induce apoptosis. This study highlights the utility of metabolomics for accessing azaphilone families and underscores deep-sea fungi as a rich source of structurally novel and biologically relevant natural products.

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