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Rationally Improving Doramectin Production in Industrial Streptomyces avermitilis Strains
Fujun Dang1, Qingyu Xu1, Zhongjun Qin1
1Key Laboratory of Synthetic Biology, The Center of Excellent Plant Molecular Sciences, The Chinese Academy of Sciences, Shanghai 200032, China.
Abstract:
Avermectins (AVMs), a family of 16-membered macrocyclic macrolides produced by Streptomyces avermitilis, have been the most successful microbial natural antiparasitic agents in recent decades. Doramectin, an AVM derivative produced by S. avermitilis bkd mutants through cyclohexanecarboxylic acid (CHC) feeding, was commercialized as a veterinary antiparasitic drug by Pfizer Inc. Our previous results show that the production of avermectin and actinorhodin was affected by several other polyketide biosynthetic gene clusters in S. avermitilis and Streptomyces coelicolor, respectively. Thus, here, we propose a rational strategy to improve doramectin production via the termination of competing polyketide biosynthetic pathways combined with the overexpression of CoA ligase, providing precursors for polyketide biosynthesis. fadD17, an annotated putative cyclohex-1-ene-1-carboxylate:CoA ligase-encoding gene, was proven to be involved in the biosynthesis of doramectin. By sequentially removing three PKS (polyketide synthase) gene clusters and overexpressing FadD17 in the strain DM203, the resulting strain DM223 produced approximately 723 mg/L of doramectin in flasks, which was approximately 260% that of the original strain DM203 (approximately 280 mg/L). To summarize, our work demonstrates a novel viable approach to engineer doramectin overproducers, which might contribute to the reduction in the cost of this valuable compound in the future.
Insights
Engineered Streptomyces avermitilis to boost doramectin production by over 260%. This involved removing competing polyketide pathways and overexpressing a key CoA ligase gene, offering a cost-effective approach for this antiparasitic agent.
Area of Science:
- Microbial Biotechnology
- Synthetic Biology
- Natural Product Biosynthesis
Background:
- Avermectins (AVMs) are potent antiparasitic macrolides produced by Streptomyces avermitilis.
- Doramectin, a key AVM derivative, is vital in veterinary medicine.
- Competing polyketide biosynthetic pathways can limit doramectin yield.
Purpose of the Study:
- To enhance doramectin production in Streptomyces avermitilis.
- To engineer a microbial strain for increased yield of the antiparasitic agent.
- To develop a cost-effective method for doramectin manufacturing.
Main Methods:
- Genetic engineering of Streptomyces avermitilis.
- Deletion of three polyketide synthase (PKS) gene clusters.
- Overexpression of the fadD17 gene encoding a CoA ligase.
Main Results:
- Engineered strain DM223 achieved doramectin production of approximately 723 mg/L.
- This represents a significant increase of approximately 260% compared to the original strain DM203 (approx. 280 mg/L).
- Successful disruption of competing pathways and enhancement of precursor supply.
Conclusions:
- A rational metabolic engineering strategy significantly improves doramectin yield.
- The combined approach of pathway elimination and precursor pathway enhancement is effective.
- This work provides a foundation for the cost-effective industrial production of doramectin.
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