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沙林霉素生物合成通过在其生物合成基因簇中携带 3-羟酰基辅酶 A 脱氢酶基因,反向调节白色链霉菌中的 β-氧化途径。

Salinomycin biosynthesis reversely regulates the β-oxidation pathway in Streptomyces albus by carrying a 3-hydroxyacyl-CoA dehydrogenase gene in its biosynthetic gene cluster.

机构信息

The Fourth Affiliated Hospital, Zhejiang University School of Medicine, Hangzhou, China.

Zhejiang Provincial Key Laboratory for Microbial Biochemistry and Metabolic Engineering, Hangzhou, China.

出版信息

Microb Biotechnol. 2022 Dec;15(12):2890-2904. doi: 10.1111/1751-7915.14145. Epub 2022 Sep 13.

Abstract

Streptomyces is well known for synthesis of many biologically active secondary metabolites, such as polyketides and non-ribosomal peptides. Understanding the coupling mechanisms of primary and secondary metabolism can help develop strategies to improve secondary metabolite production in Streptomyces. In this work, Streptomyces albus ZD11, an oil-preferring industrial Streptomyces strain, was proved to have a remarkable capability to generate abundant acyl-CoA precursors for salinomycin biosynthesis with the aid of its enhanced β-oxidation pathway. It was found that the salinomycin biosynthetic gene cluster contains a predicted 3-hydroxyacyl-CoA dehydrogenase (FadB3), which is the third enzyme of β-oxidation cycle. Deletion of fadB3 significantly reduced the production of salinomycin. A variety of experimental evidences showed that FadB3 was mainly involved in the β-oxidation pathway rather than ethylmalonyl-CoA biosynthesis and played a very important role in regulating the rate of β-oxidation in S. albus ZD11. Our findings elucidate an interesting coupling mechanism by which a PKS biosynthetic gene cluster could regulate the β-oxidation pathway by carrying β-oxidation genes, enabling Streptomyces to efficiently synthesize target polyketides and economically utilize environmental nutrients.

摘要

链霉菌以合成许多生物活性的次级代谢产物而闻名,如聚酮和非核糖体肽。了解初级代谢和次级代谢的偶联机制有助于开发提高链霉菌中次级代谢产物生产的策略。在这项工作中,证明了亲油性工业链霉菌菌株白色链霉菌 ZD11 具有显著的能力,可在增强的β-氧化途径的帮助下产生丰富的酰基辅酶 A 前体用于生产盐霉素。发现盐霉素生物合成基因簇包含一个预测的 3-羟基酰基辅酶 A 脱氢酶(FadB3),它是β-氧化循环的第三酶。FadB3 的缺失显著降低了盐霉素的产量。各种实验证据表明,FadB3 主要参与β-氧化途径,而不是乙基丙二酰辅酶 A 生物合成,并在调节白色链霉菌 ZD11 中的β-氧化速率方面发挥着非常重要的作用。我们的研究结果阐明了一种有趣的偶联机制,即 PKS 生物合成基因簇可以通过携带β-氧化基因来调节β-氧化途径,使链霉菌能够有效地合成目标聚酮化合物,并经济地利用环境营养物质。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dac4/9733648/4591c49900fa/MBT2-15-2890-g001.jpg

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