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Characterization of a C3 Deoxygenation Pathway Reveals a Key Branch Point in Aminoglycoside Biosynthesis

机译:C3脱氧途径的表征揭示了氨基糖苷生物合成中的关键分支点

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Apramycin is a clinically interesting aminoglycoside antibiotic (AGA) containing a highly unique bicyclic octose moiety, and this octose is deoxygenated at the C3 position. Although the biosynthetic pathways for most 2-deoxystreptamine-containing AGAs have been well characterized, the pathway for apramycin biosynthesis, including the C3 deoxygenation process, has long remained unknown. Here we report detailed investigation of apramycin biosynthesis by a series of genetic, biochemical and bioinformatical studies. We show that AprD4 is a novel radical S-adenosyl-L-methionine (SAM) enzyme, which uses a noncanonical CX_3CX_3C motif for binding of a [4Fe-4S] cluster and catalyzes the dehydration of paromamine, a pseudodisaccharide intermediate in apramycin biosynthesis. We also show that AprD3 is an NADPH-dependent reductase that catalyzes the reduction of the dehydrated product from AprD4-catalyzed reaction to generate lividamine, a C3' deoxygenated product of paromamine. AprD4 and AprD3 do not form a tight catalytic complex, as shown by protein complex immunoprecipitation and other assays. The AprD4/AprD3 enzyme system acts on different pseudodisaccharide substrates but does not catalyze the deoxygenation of oxyapramycin, an apramycin analogue containing a C3 hydroxyl group on the octose moiety, suggesting that oxyapramycin and apramycin are partitioned into two parallel pathways at an early biosynthetic stage. Functional dissection of the C6 dehydrogenase AprQ shows the crosstalk between different AGA biosynthetic gene clusters from the apramycin producer Streptomyces tenebrarius, and reveals the remarkable catalytic versatility of AprQ. Our study highlights the intriguing chemistry in apramycin biosynthesis and nature's ingenuity in combinatorial biosynthesis of natural products.
机译:安普霉素是一种临床上令人感兴趣的氨基糖苷抗生素(AGA),包含高度独特的双环八糖部分,该八糖在C3位置脱氧。尽管大多数含2个脱氧链胺胺的AGA的生物合成途径已得到很好的表征,但是长久以来仍不知道阿普拉霉素生物合成的途径,包括C3脱氧过程。在这里,我们通过一系列的遗传,生物化学和生物信息学研究报告了阿普霉素生物合成的详细研究。我们显示AprD4是一种新型的自由基S-腺苷-L-蛋氨酸(SAM)酶,它使用非规范的CX_3CX_3C图案结合[4Fe-4S]簇并催化巴龙胺的脱水,阿帕霉素生物合成中的一种假二糖中间体。我们还显示,AprD3是一种NADPH依赖性还原酶,可催化从AprD4催化的反应生成Lividamine(一种巴胺的C3'脱氧产物)的脱水产物的还原。蛋白复合物免疫沉淀和其他检测方法表明,AprD4和AprD3不会形成紧密的催化复合物。 AprD4 / AprD3酶系统可作用于不同的假二糖底物上,但不能催化羟氨霉素的脱氧,羟氨霉素是在八糖部分含C3羟基的阿普拉类似物,这表明羟氨霉素和阿普拉霉素在生物合成的早期被分为两个平行的途径。 C6脱氢酶AprQ的功能剖析显示了来自阿普霉素生产商Tenebrarius的链霉菌的不同AGA生物合成基因簇之间的串扰,并揭示了AprQ的出色催化多功能性。我们的研究突出了阿普霉素生物合成中令人着迷的化学性质以及天然产物组合生物合成中自然界的独创性。

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  • 来源
    《Journal of the American Chemical Society》 |2016年第20期|6427-6435|共9页
  • 作者单位

    Key Laboratory of Combinatory Biosynthesis and Drug Discovery (Ministry of Education), School of Pharmaceutical Sciences, Wuhan University, Wuhan, 430071, China;

    Department of Chemistry, Fudan University, Shanghai, 200433, China;

    Key Laboratory of Combinatory Biosynthesis and Drug Discovery (Ministry of Education), School of Pharmaceutical Sciences, Wuhan University, Wuhan, 430071, China,Department of Chemistry, Fudan University, Shanghai, 200433, China;

    Department of Chemistry, Fudan University, Shanghai, 200433, China;

    Department of Chemistry, Fudan University, Shanghai, 200433, China;

    Key Laboratory of Combinatory Biosynthesis and Drug Discovery (Ministry of Education), School of Pharmaceutical Sciences, Wuhan University, Wuhan, 430071, China;

    Department of Chemistry, Fudan University, Shanghai, 200433, China;

    Key Laboratory of Combinatory Biosynthesis and Drug Discovery (Ministry of Education), School of Pharmaceutical Sciences, Wuhan University, Wuhan, 430071, China;

    Key Laboratory of Combinatory Biosynthesis and Drug Discovery (Ministry of Education), School of Pharmaceutical Sciences, Wuhan University, Wuhan, 430071, China;

    Department of Chemistry, Fudan University, Shanghai, 200433, China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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  • 入库时间 2022-08-18 03:08:45

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