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Updated: Apr 26, 2026

Elucidating the Metabolism of 2,4-Dibromophenol in Plants
Published on: February 10, 2023
Enzymatic synthesis of polybrominated dioxins from the marine environment
Vinayak Agarwal1, Bradley S Moore
1Center for Oceans and Human Health, Scripps Institution of Oceanography and ‡Skaggs School of Pharmacy and Pharmaceutical Sciences, University of California , San Diego, California 92093, United States.
Abstract:
Polyhalogenated dibenzo-p-dioxins are arguably among the most toxic molecules known to man. In addition to anthropogenic sources, marine invertebrates also harbor polybrominated dibenzo-p-dioxins of as yet unknown biogenic origin. Here, we report that the bmp gene locus in marine bacteria, a recently characterized source of polybrominated diphenyl ethers, can also synthesize dibenzo-p-dioxins by employing different phenolic initiator molecules. Our findings also diversify the structural classes of diphenyl ethers accessed by the bmp biosynthetic pathway. This report lays the biochemical foundation of a likely biogenetic origin of dibenzo-p-dioxins present in the marine metabolome and greatly expands the toxicity potential of marine derived polyhaloganated natural products.
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