首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >Engineered biosynthesis of novel polyketides: influence of a downstream enzyme on the catalytic specificity of a minimal aromatic polyketide synthase.
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Engineered biosynthesis of novel polyketides: influence of a downstream enzyme on the catalytic specificity of a minimal aromatic polyketide synthase.

机译:新型聚酮化合物的工程化生物合成:下游酶对最低限度的芳香族聚酮化合物合酶的催化特异性的影响。

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摘要

To identify the minimum set of polyketide synthase (PKS) components required for in vivo biosynthesis of aromatic polyketides, combinations of genes encoding subunits of three different aromatic PKSs--act from Streptomyces coelicolor A3(2) (an actinorhodin producer), fren from Streptomyces roseofulvus (a frenolicin and nanaomycin producer), and tcm from Streptomyces glaucescens (a tetracenomycin producer)--were expressed in a recently developed Streptomyces host-vector system. The "minimal" components (ketosynthase/putative acyltransferase, chain length-determining factor, and acyl carrier protein) were produced with and without a functional polyketide ketoreductase and/or cyclase, and the polyketide products of these recombinant strains were structurally characterized. Several previously identified polyketides were isolated in addition to two previously unidentified polyketides, dehydromutactin and SEK 15b, described here. The results proved that the act cyclase is not required for the biosynthesis of several aberrantly cyclized products that have been previously reported. They are also consistent with earlier conclusions that the minimal PKS controls chain length as well as the regiospecificity of the first cyclization and that it can do so in the absence of both a ketoreductase and a cyclase. However, the ability of the minimal tcm PKS to synthesize two different singly cyclized intermediates suggests that it is unable to accurately control the course of this reaction by itself. In the presence of a downstream enzyme, the flux through one branch of the cyclization pathway increases relative to the other. We propose that these alternative specificities may be due to the ability of downstream enzymes to associate with the minimal PKS and to selectively inhibit a particular branch of the cyclization pathway.
机译:为了确定在体内生物合成芳香族聚酮化合物所需的最小量的聚酮化合物合酶(PKS)组件,编码三种不同芳香族PKS亚基的基因组合-来源于链霉菌coelicolor A3(2)(一种放线菌素生产者),来自链霉菌属在最近开发的链霉菌宿主载体系统中表达了roseofulvus(一种弗瑞霉素和纳那霉素的生产者)和来自Streptomyces glaucescens(一种四烯菌素的生产者)的tcm。在有和没有功能性聚酮化合物酮还原酶和/或环化酶的情况下,产生“最小”成分(酮合成酶/推定的酰基转移酶,链长决定因子和酰基载体蛋白),并对这些重组菌株的聚酮产物进行结构表征。除此处描述的两种先前未鉴定的聚酮化合物(脱氢mutactin和SEK 15b)外,还分离了几种先前鉴定的聚酮化合物。结果证明,先前报道过的几种异常环化产物的生物合成不需要act环化酶。它们还与先前的结论一致,即最小的PKS控制链长以及第一个环化的区域特异性,并且在不存在酮还原酶和环化酶的情况下也可以做到这一点。但是,最小tcm PKS能够合成两种不同的单环化中间体的能力表明,它本身无法准确地控制该反应的过程。在下游酶的存在下,通过环化途径一个分支的通量相对于另一个分支增加。我们提出这些替代特异性可能是由于下游酶与最小的PKS缔合并选择性抑制环化途径的特定分支的能力所致。

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