Re-examining the iron paradox: the influence of growth medium on regulation and functionality of the tropodithietic acid (TDA) biosynthetic pathway in Phaeobacter piscinae

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ID: 321389
2026
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Abstract
Abstract Tropodithietic acid (TDA) is a secondary metabolite with antimicrobial and iron-binding properties, produced by several marine Roseobacter group bacteria. Although classified as a siderophore, TDA is also produced under iron-replete conditions. To address this paradox, we fused the tdaCDE promoter region of Phaeobacter piscinae S26 with a promoter-less gfp reporter gene to monitor the transcription of TDA biosynthetic genes under different conditions and validated its accuracy using RT-qPCR. In both complex (½YTIO) and low-complexity (IOCGH) marine media, iron supplementation repressed tdaCDE transcription and reduced iron-chelation activity. However, TDA production responded differently depending on medium composition: iron suppressed TDA production in IOCGH but increased it in ½YTIO. Antimicrobial activity of culture supernatants declined in late-stage iron-limited ½YTIO-based cultures, even though tdaCDE transcription and iron-chelating activity increased. Acidification restored antimicrobial activity and increased detectable TDA levels, while several non-antimicrobial structural analogues - detected by LC-MS in non-acidified samples - diminished upon acidification, suggesting pH-driven interconversion. These findings reveal that TDA biosynthesis is regulated by iron availability but that the antimicrobial output of the producer depends on medium composition and pH-driven chemical transformations between TDA and its related structural analogues.
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Authors Lauge Alfastsen, Morgane Mauduit, Michael S. Cowled, Nikoletta Angela Vig, Robert Friis-Møller, Frederik Valdemar Holck Reimert, Morten Dencker Schostag, Aaron J.C. Andersen, Lone Gram, Sheng‐Da Zhang
Journal fems microbiology ecology
Year 2026
DOI
10.1093/femsec/fiag080
URL
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