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雷弗霉素 A 的生物合成利用 RevG 和 RevJ 进行立体特异性螺缩酮形成。

Reveromycin A biosynthesis uses RevG and RevJ for stereospecific spiroacetal formation.

机构信息

Chemical Biology Department, RIKEN Advanced Science Institute, Saitama, Japan.

出版信息

Nat Chem Biol. 2011 Jun 5;7(7):461-8. doi: 10.1038/nchembio.583.

Abstract

Spiroacetal compounds are ubiquitous in nature, and their stereospecific structures are responsible for diverse pharmaceutical activities. Elucidation of the biosynthetic mechanisms that are involved in spiroacetal formation will open the door to efficient generation of stereospecific structures that are otherwise hard to synthesize chemically. However, the biosynthesis of these compounds is poorly understood, owing to difficulties in identifying the responsible enzymes and analyzing unstable intermediates. Here we comprehensively describe the spiroacetal formation involved in the biosynthesis of reveromycin A, which inhibits bone resorption and bone metastases of tumor cells by inducing apoptosis in osteoclasts. We performed gene disruption, systematic metabolite analysis, feeding of labeled precursors and conversion studies with recombinant enzymes. We identified two key enzymes, dihydroxy ketone synthase and spiroacetal synthase, and showed in vitro reconstruction of the stereospecific spiroacetal structure from a stable acyclic precursor. Our findings provide insights into the creation of a variety of biologically active spiroacetal compounds for drug leads.

摘要

螺缩酮化合物在自然界中广泛存在,其立体特异性结构负责多种药物活性。阐明参与螺缩酮形成的生物合成机制将为高效生成化学上难以合成的立体特异性结构开辟道路。然而,由于难以识别负责的酶和分析不稳定的中间体,这些化合物的生物合成仍知之甚少。在这里,我们全面描述了 reveromycin A 生物合成中涉及的螺缩酮形成,该化合物通过诱导破骨细胞凋亡来抑制骨吸收和肿瘤细胞的骨转移。我们进行了基因敲除、系统代谢物分析、标记前体的喂养以及用重组酶进行的转化研究。我们鉴定了两种关键酶,二羟基酮合酶和螺缩酮合酶,并显示了从稳定的无环前体体外重建立体特异性螺缩酮结构。我们的发现为创造各种具有生物活性的螺缩酮化合物提供了药物先导的见解。

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