Institute for Genomic Biology, University of Illinois at Urbana-Champaign, Urbana, Illinois, USA.
Graduate School of Integrated Sciences for Life, Hiroshima University, Higashi-Hiroshima City, Hiroshima, Japan.
J Bacteriol. 2023 May 25;205(5):e0048522. doi: 10.1128/jb.00485-22. Epub 2023 Apr 19.
Phosphonothrixin is an herbicidal phosphonate natural product with an unusual, branched carbon skeleton. Bioinformatic analyses of the gene cluster, which is responsible for synthesis of the compound, suggest that early steps of the biosynthetic pathway, up to production of the intermediate 2,3-dihydroxypropylphosphonic acid (DHPPA) are identical to those of the unrelated phosphonate natural product valinophos. This conclusion was strongly supported by the observation of biosynthetic intermediates from the shared pathway in spent media from two phosphonothrixin producing strains. Biochemical characterization of -encoded proteins confirmed these early steps, as well as subsequent steps involving the oxidation of DHPPA to 3-hydroxy-2-oxopropylphosphonate and its conversion to phosphonothrixin by the combined action of an unusual heterodimeric, thiamine-pyrophosphate (TPP)-dependent ketotransferase and a TPP-dependent acetolactate synthase. The frequent observation of -like gene clusters within actinobacteria suggests that production of compounds related to phosphonothrixin is common within these bacteria. Phosphonic acid natural products, such as phosphonothrixin, have great potential for biomedical and agricultural applications; however, discovery and development of these compounds requires detailed knowledge of the metabolism involved in their biosynthesis. The studies reported here reveal the biochemical pathway phosphonothrixin production, which enhances our ability to design strains that overproduce this potentially useful herbicide. This knowledge also improves our ability to predict the products of related biosynthetic gene clusters and the functions of homologous enzymes.
磷霉素是一种具有不寻常支链碳骨架的除草剂膦酸天然产物。负责合成该化合物的基因簇的生物信息学分析表明,生物合成途径的早期步骤,直到中间产物 2,3-二羟丙基膦酸 (DHPPA) 的产生,与不相关的膦酸天然产物 valinophos 相同。这一结论得到了从两个产生磷霉素的菌株的废培养基中观察到共享途径生物合成中间体的有力支持。-编码蛋白的生化特性证实了这些早期步骤,以及随后涉及 DHPPA 氧化为 3-羟基-2-氧代丙基膦酸以及其通过不寻常的异二聚体、硫胺素焦磷酸 (TPP) 依赖性酮转移酶和 TPP 依赖性乙酰乳酸合酶的联合作用转化为磷霉素的步骤。放线菌中频繁观察到 -样基因簇表明,与磷霉素相关的化合物的产生在这些细菌中很常见。膦酸天然产物,如磷霉素,在生物医药和农业应用方面具有巨大潜力;然而,这些化合物的发现和开发需要详细了解其生物合成中涉及的代谢。这里报道的研究揭示了磷霉素生产的生化途径,这增强了我们设计过度生产这种潜在有用除草剂的菌株的能力。这一知识还提高了我们预测相关生物合成基因簇产物和同源酶功能的能力。