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复杂聚酮生物合成的工程学——莫能菌素生物合成基因簇测序的启示

Engineering of complex polyketide biosynthesis--insights from sequencing of the monensin biosynthetic gene cluster.

作者信息

Leadlay P F, Staunton J, Oliynyk M, Bisang C, Cortés J, Frost E, Hughes-Thomas Z A, Jones M A, Kendrew S G, Lester J B, Long P F, McArthur H A, McCormick E L, Oliynyk Z, Stark C B, Wilkinson C J

机构信息

Department of Biochemistry, University of Cambridge, Cambridge CB2 1GA, UK.

出版信息

J Ind Microbiol Biotechnol. 2001 Dec;27(6):360-7. doi: 10.1038/sj.jim.7000204.

Abstract

The biosynthesis of complex reduced polyketides is catalysed in actinomycetes by large multifunctional enzymes, the modular Type I polyketide synthases (PKSs). Most of our current knowledge of such systems stems from the study of a restricted number of macrolide-synthesising enzymes. The sequencing of the genes for the biosynthesis of monensin A, a typical polyether ionophore polyketide, provided the first genetic evidence for the mechanism of oxidative cyclisation through which polyethers such as monensin are formed from the uncyclised products of the PKS. Two intriguing genes associated with the monensin PKS cluster code for proteins, which show strong homology with enzymes that trigger double bond migrations in steroid biosynthesis by generation of an extended enolate of an unsaturated ketone residue. A similar mechanism operating at the stage of an enoyl ester intermediate during chain extension on a PKS could allow isomerisation of an E double bond to the Z isomer. This process, together with epoxidations and cyclisations, form the basis of a revised proposal for monensin formation. The monensin PKS has also provided fresh insight into general features of catalysis by modular PKSs, in particular into the mechanism of chain initiation.

摘要

在放线菌中,复杂还原型聚酮化合物的生物合成由大型多功能酶——模块化I型聚酮合酶(PKSs)催化。我们目前对此类系统的大部分了解源于对数量有限的大环内酯合成酶的研究。莫能菌素A(一种典型的聚醚离子载体聚酮化合物)生物合成基因的测序,为氧化环化机制提供了首个遗传学证据,通过该机制,莫能菌素等聚醚由PKS的未环化产物形成。与莫能菌素PKS簇相关的两个有趣基因编码的蛋白质,与通过生成不饱和酮残基的延长烯醇盐来触发类固醇生物合成中双键迁移的酶具有很强的同源性。在PKS链延伸过程中,在烯酰酯中间体阶段起作用的类似机制可能使E双键异构化为Z异构体。这个过程,连同环氧化和环化,构成了莫能菌素形成的修订提议的基础。莫能菌素PKS还为模块化PKS的催化一般特征,特别是链起始机制,提供了新的见解。

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