ArticleJACS Au2026
Biosynthesis of Complex Phenazines Involves Dimerization and Amination Catalyzed by a Versatile Nuclear Transport Factor 2‑like Superfamily Protein.
Article in JACS Au, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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Abstract
Phenazine natural products represent a structurally diverse class of aromatic alkaloids with broad-spectrum biological activities. Among these compounds, phenazine dimers have attracted considerable attention owing to their intricate molecular architectures and potent antibacterial and anticancer properties. Although the biosynthesis of the core phenazine scaffold is well characterized, the enzymatic postmodifications, especially those governing dimerization processes that yield structurally varied diphenazines, remain poorly understood. In this study, we elucidate the complete biosynthesis of diverse dimeric and aminated phenazines. Following core assembly, the flavoprotein DapS initiates postmodification by catalyzing the C6-selective decarboxylative hydroxylation of phenazine-1,6-dicarboxylic acid (PDC). We further uncover Dap5, a nuclear transport factor 2 (NTF2)-like protein, as a multifunctional enzyme that catalyzes hydroxylation, dimerization, and amination of phenazines. Strikingly, Dap5 operates independently of flavin or metal cofactors, instead activating oxygen by exploiting the redox cycling of its phenazine substrate within the enzyme-substrate complex. Structural and docking analyses based on a modeled protein structure suggest that these reactions likely share a common predicted active-site cavity but employ distinct residue networks for substrate binding and catalysis. This study solves a long-standing puzzle in the biosynthesis of dimeric phenazines and demonstrates a unique substrate-assisted radical strategy, offering new insights into the evolution of multifunctional enzymes.
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