Enhanced lincomycin production by co-overexpression of metK1 and metK2 in Streptomyces lincolnensis

Author:

Xu Yurong1,Tan Guoqing1,Ke Meilan1,Li Jie1,Tang Yaqian1,Meng Sitong2,Niu Jingjing1,Wang Yansheng1,Liu Ruihua3,Wu Hang1,Bai Linquan2,Zhang Lixin14,Zhang Buchang1

Affiliation:

1. 0000 0001 0085 4987 grid.252245.6 School of Life Sciences, School of Chemistry and Chemical Engineering, Institute of Physical Science and Information Technology Anhui University 230601 Hefei China

2. 0000 0004 0368 8293 grid.16821.3c State Key Laboratory of Microbial Metabolism Shanghai Jiao Tong University 200240 Shanghai China

3. Xinyu Pharmaceutical Co. Ltd. 234000 Suzhou China

4. 0000 0001 2163 4895 grid.28056.39 State Key Laboratory of Bioreactor Engineering East China University of Science and Technology 200237 Shanghai China

Abstract

Abstract Streptomyces lincolnensis is generally utilized for the production of lincomycin A (Lin-A), a clinically useful antibiotic to treat Gram-positive bacterial infections. Three methylation steps, catalyzed by three different S-adenosylmethionine (SAM)-dependent methyltransferases, are required in the biosynthesis of Lin-A, and thus highlight the significance of methyl group supply in lincomycin production. In this study, we demonstrate that externally supplemented SAM cannot be taken in by cells and therefore does not enhance Lin-A production. Furthermore, bioinformatics and in vitro enzymatic assays revealed there exist two SAM synthetase homologs, MetK1 (SLCG_1651) and MetK2 (SLCG_3830) in S. lincolnensis that could convert l-methionine into SAM in the presence of ATP. Even though we attempted to inactivate metK1 and metK2, only metK2 was deleted in S. lincolnensis LCGL, named as ΔmetK2. Following a reduction of the intracellular SAM concentration, ΔmetK2 mutant exhibited a significant decrease of Lin-A in comparison to its parental strain. Individual overexpression of metK1 or metK2 in S. lincolnensis LCGL either elevated the amount of intracellular SAM, concomitant with 15% and 22% increase in Lin-A production, respectively. qRT-PCR assays showed that overexpression of either metK1 or metK2 increased the transcription of lincomycin biosynthetic genes lmbA and lmbR, and regulatory gene lmbU, indicating SAM may also function as a transcriptional activator. When metK1 and metK2 were co-expressed, Lin-A production was increased by 27% in LCGL, while by 17% in a high-yield strain LA219X.

Funder

Open Project of State Key Laboratory of Microbial Metabolism from Shanghai Jiao Tong University

The National Natural Science Foundation of China

The National Program on Key Basic Research Project

The Initial Foundation of Doctoral Scientific Research in Anhui University

National Innovation Experiment Program for University Students

Publisher

Oxford University Press (OUP)

Subject

Applied Microbiology and Biotechnology,Biotechnology,Bioengineering

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